Surface Technology (表面技术)•2026•DOI: 10.16490/j.cnki.issn.1001-3660.2026.08.009
This study addresses the corrosion failure of SS304L stainless steel in breeding environments by developing a laser micro-additive copper-embedded surface functionalization process. A 355 nm nanosecond laser with 60 W average power, 40 kHz repetition rate, and 16 ns pulse width was used to embed a 0.12 µm Cu foil onto SS304L substrates under three coating strategies: single-layer, double-layer, and double-pass, each at scanning speeds of 400, 800, and 1200 mm/s. Surface characterization via 3D profilometry, SEM, EDS, and XPS revealed regular grooves and micro-concave structures with height differences increasing from 0.1 µm (untreated) to 1.6–3.8 µm, with the double-pass sample achieving the maximum 3.8 µm. Cu particles were successfully embedded, forming CuO and Cu2O oxide layers. Electrochemical tests in 3.5 wt.% NaCl solution showed that the optimal sample (double-layer coating at 800 mm/s, designated b2) exhibited the highest corrosion potential (increased by ~0.04 V), a one-order-of-magnitude reduction in corrosion current, and a maximum charge transfer resistance (Rct) of 6954 Ω·cm². These results demonstrate that laser micro-additive embedding of copper synergistically enhances the corrosion resistance of stainless steel through surface texturing, copper particle incorporation, and oxide film formation.
Surface Technology (表面技术)•2026•DOI: 10.16490/j.cnki.issn.1001-3660.2026.08.005
Organic barrier coatings fail prematurely under synergistic marine corrosion factors, necessitating autonomous damage reporting and repair. This study synthesizes DT@PU/UF microcapsules via one-step in-situ polymerization, encapsulating 2′,7′-dichlorofluorescein (DCF) as a reporting agent and tung oil (TO) as a healing agent within a polyurethane/urea-formaldehyde hybrid shell. Single-variable experiments established optimal processing parameters: stirring speed 400 r/min, reaction time 3 h, and emulsifier (EMA) dosage 0.5 wt.%. The resulting microcapsules achieved DCF and TO loading capacities of 1.3% and 35.82%, respectively. Incorporating these microcapsules into an epoxy matrix yielded DP coatings. Electrochemical impedance spectroscopy, adhesion testing, and optical microscopy revealed that a 9 wt.% microcapsule loading (DP9wt.%) delivered optimal performance. After 240 h of seawater immersion, DP9wt.% exhibited an impedance modulus of 2.88×10^5 Ω·cm^2, one order of magnitude higher than the neat epoxy (EP) coating, and a wet adhesion loss of only 37.7%. Scratch tests confirmed that microcapsule rupture releases DCF, which reacts with residual amine groups to form a red precipitate under natural light and yellow fluorescence under UV, enabling dual-mode damage reporting. Simultaneously, TO fills cracks and crosslinks with oxygen to restore barrier integrity. This dual-action mechanism offers a viable route for extending the service life of epoxy coatings in marine environments.
Surface Technology (表面技术)•2026•DOI: 10.16490/j.cnki.issn.1001-3660.2026.08.001
Galvanized steel sheets are widely used in construction, automotive, appliance, and power industries due to their corrosion resistance, which can be further enhanced by passivation. Traditional chromate passivation, while effective due to self-repairing ability and chemical stability, poses severe health and environmental risks from hexavalent chromium. This review systematically categorizes recent chromium-free passivation technologies into inorganic, organic, and organic/inorganic composite systems. Inorganic systems include molybdates, rare earth salts (e.g., cerium, lanthanum), titanium salts, and silicates; organic systems include silanes, tannic acid, and acrylic resins. Film formation mechanisms and anticorrosion properties are examined. Individual systems exhibit limitations: molybdate films have micro-defects and limited thickness uniformity; rare earth films crack upon drying; organic films offer flexibility and adhesion but insufficient barrier properties. Organic/inorganic composite passivation integrates inorganic barrier function with organic interfacial binding and functional regulation, significantly improving film integrity and durability. The review concludes with challenges and prospects for chromium-free passivation.
Surface Technology (表面技术)•2026•DOI: 10.16490/j.cnki.issn.1001-3660.2026.12.003
A double-bridge connection method is proposed for rapid determination of the equivalent accelerated relationship between laboratory accelerated corrosion environment spectrum and actual atmospheric exposure for aviation aluminum alloys. The method employs corrosion electricity and corrosion weight loss as equivalent parameters, enabling calculation of the equivalent acceleration relationship without long-term outdoor exposure test pieces, using atmospheric environment monitoring data, laboratory corrosion weight loss tests, and short-term atmospheric exposure results. For ZL114A aluminum alloy, 10-year atmospheric monitoring data from a tropical marine environment were processed to compile climatic and chemical environment spectra. A laboratory accelerated corrosion environment spectrum was prepared via weighted concentration of environmental factors. Atmospheric corrosion monitoring (ACM) and electrochemical workstation measurements determined corrosion current and conversion coefficients under varying temperature, humidity, and acid solution conditions. The cumulative corrosion electricity for 10-year island atmospheric exposure was 3,050,339.15 C. Laboratory weight loss tests yielded the average corrosion weight loss rate per unit area. The equivalent acceleration relationship for ZL114A alloy under the compiled spectrum was 74 h/a. Verification via SEM, CT scanning, and fatigue testing compared surface damage morphology, pit dimensions, fatigue life, and fracture morphology of specimens exposed to atmospheric conditions for 6 months, 1 year, and laboratory accelerated corrosion for 72 h. Results confirm identical corrosion damage modes and severity consistent with the derived equivalent acceleration relationship. The 72 h accelerated specimens exhibited damage between 6-month and 1-year atmospheric exposures, closer to 1-year exposure, validating the method's feasibility.
Surface Technology (表面技术)•2026•DOI: 10.16490/j.cnki.issn.1001-3660.2026.12.002
Thermal barrier coatings (TBCs) are critical for protecting aero-engine and gas-turbine hot-section components, yet conventional yttria-stabilized zirconia (YSZ) coatings degrade severely above 1200 °C through phase destabilization, sintering-induced densification, and environmental attack. This review systematically analyzes high-temperature failure mechanisms governed by coupled oxidation, residual stress, and corrosion. Key degradation modes include thermally grown oxide (TGO) thickening and interfacial rumpling, tetragonal-to-monoclinic phase transformation in YSZ, CMAS and molten-salt infiltration, and water-oxygen synergistic erosion. The dynamic interrelations and nonlinear characteristics of these failure modes are clarified. Efficiency enhancement strategies are categorized into compositional optimization (novel ceramics, multi-component solid solutions, reactive-element doping), microstructural design (lamellar, columnar, and functionally graded architectures), and post-treatment (laser remelting, vacuum heat treatment). Quantitative benchmarks demonstrate that at 1200 °C thermal cycling, BPS coatings remain intact after 250 cycles versus spallation of 8YSZ at 150 cycles, indicating a ≥67% lifetime improvement. Vacuum heat treatment suppresses bond-coat damage, reducing oxide content by ~80% and porosity by ~90% after 400 h isothermal oxidation. These findings provide a theoretical and technical basis for rational design of next-generation high-performance, long-life TBCs.
Surface Technology (表面技术)•2026•DOI: 10.16490/j.cnki.issn.1001-3660.2026.12.006
Aluminum-lithium alloys are critical aerospace structural materials but suffer localized corrosion in chloride environments, necessitating protective coatings that also resist ultraviolet degradation. Conventional epoxy coatings are brittle, prone to microcracking, and photodegrade under UV radiation, leading to chalking, discoloration, and loss of barrier properties. This study synthesizes sheet-like CeO2 nanoparticles via reverse precipitation and functionalizes them with vinyl triethoxysilane (VTEO) and γ-aminopropyl triethoxysilane (KH550) to enhance interfacial compatibility and dispersion in an epoxy matrix. The resulting VTEO−CeO2/Epoxy and KH550−CeO2/Epoxy composite coatings are systematically characterized using FT-IR, XRD, and TEM, confirming successful silane grafting. UV-Vis and fluorescence spectroscopy reveal that modified CeO2 absorbs UV radiation more strongly and converts it to harmless heat, delaying photoxidative degradation of aromatic ether and CH3−C bonds in the epoxy. After 168 h of UV accelerated aging, the VTEO−CeO2/Epoxy coating exhibits the lowest corrosion current density (3.175×10−7 A/cm2) and larger capacitive arc radius, indicating superior and stable corrosion resistance. Contact angle tests show minimal hydrophilicity change after aging. The self-healing mechanism involves Ce3+ reacting with water and oxygen at damage sites to form insoluble CeO2 and Ce(OH)3, blocking micropores and inhibiting corrosive media ingress. This work provides a viable strategy for multifunctional epoxy coatings with integrated UV shielding, corrosion inhibition, and autonomous self-healing for aerospace applications.
Opto-Electronic Advances (光电进展)•2026•DOI: 10.29026/oea.2026.250193
Second-harmonic generation (SHG) is a fundamental second-order nonlinear optical process that coherently doubles the frequency of incident light. However, in centrosymmetric materials, the bulk second-order nonlinear susceptibility χ(2) is strictly forbidden by inversion symmetry, suppressing SHG. Applying an external electric field breaks this inversion symmetry and induces an effective second-order nonlinear response known as the electric-field-induced second-harmonic generation (EFISH) effect. This mechanism enables SHG in centrosymmetric media and provides a route for electrically tunable nonlinear nanophotonics. This review presents a comprehensive overview of the EFISH effect, covering its fundamentals, various material platforms (including bulk semiconductor crystals, ferroelectrics, van der Waals materials, and polymers), and diverse strategies for electric field engineering. We distinguish EFISH from related effects such as current-induced SHG and the quantum-confined Stark effect. Emerging applications of EFISH in tunable photonic devices, carrier dynamics probing, and nonlinear optical modulation across optical, electronic, and THz regimes are highlighted. Key challenges and prospects for the future development of electrically controlled nonlinear optical systems are outlined. The review consolidates the state of the art and provides a critical assessment of the field's trajectory.
Railway Engineering Science (铁道工程科学)•2026•DOI: 10.1007/s40534-025-00379-3
Stick–slip vibration in disc brake systems at low speeds arises from the interaction of multiple factors, posing persistent challenges for high-speed train safety and passenger comfort. This study establishes three- and four-degree-of-freedom (DOF) dynamic models that incorporate wheel–rail adhesion and nonlinear friction, validated through line testing. System stability, stick–slip bifurcation characteristics, and key influencing factors are analyzed via numerical simulation. Results demonstrate that the four-DOF model, by accounting for normal motion, avoids the over-evaluation of system stability inherent in the three-DOF model. In the three-DOF model, tangential stiffness is the primary factor inducing chaotic stick–slip vibration. In the four-DOF model, tangential stiffness predominantly affects vibration amplitude, while normal stiffness governs the onset of chaos. Damping exhibits minimal influence on chaotic stick–slip occurrence. Optimal parameter ranges are identified: brake disc rotational inertia of 5–9 kg·m² and 11–22 kg·m², and friction pad mass of 7–17 kg, which effectively mitigate chaotic stick–slip vibration. These findings provide quantitative guidelines for brake system design, enhancing operational reliability and reducing wear-related failures in high-speed rail applications.
Railway Engineering Science (铁道工程科学)•2026•DOI: 10.1007/s40534-025-00388-2
The escalating traffic density and operational speeds of subway systems have intensified fatigue damage in turnout rails, particularly within the hazardous space of fixed frogs where wheel–rail dynamic interaction is exacerbated. This study addresses the rolling contact fatigue (RCF) crack initiation behavior of a No. 9 turnout fixed frog, a configuration widely deployed in subway networks. A three-dimensional explicit transient rolling contact finite element model was developed to simulate wheel–rail interaction under varying vehicle speeds and fastener vertical stiffness conditions. The analysis focused on crack initiation locations, angles, and fatigue life. Results demonstrate that the 30 mm top width cross-section of the nose rail is the most susceptible to fatigue cracking, with cracks initiating on the rail surface. The angle between the crack initiation surface and the lateral direction ranges from 70° to 95°, while the angle relative to the vertical direction remains difficult to predict. Higher vehicle speeds significantly reduce fatigue life, whereas fastener vertical stiffness exerts a minor influence. The calculated RCF crack initiation life is approximately 24,000 cycles across three stiffness conditions. Simulation outcomes align with field survey findings, validating the model's fidelity. The established methodology provides theoretical support for optimizing fixed frog structures and predicting fatigue life in subway turnouts.
Journal of Advanced Ceramics•2026•DOI: 10.26599/JAC.2026.9221346
Achieving intrinsic surface compressive stress in monolithic oxide ceramics without heterogeneous interfaces remains a persistent challenge. This study introduces oxygen-vacancy compensation prestressing (OVCP), a defect-engineering strategy that generates in situ surface prestressing in zirconia-toughened alumina (ZTA). Oxygen vacancy-rich ZTA was first produced by vacuum hot pressing, followed by air annealing to induce surface reoxygenation and form an oxygen-charged layer (OCL). The optimized treatment increased flexural strength to (1679±78) MPa, a 31% improvement over the unannealed state. Mechanistically, oxygen-vacancy compensation during annealing induces lattice expansion in the near-surface region. Constrained by the less-oxidized interior, this expansion converts into a residual compressive stress field that suppresses bending-induced failure. A simplified bilayer model quantitatively supports the experimentally observed strengthening behavior. These findings establish oxygen vacancy-regulated lattice expansion as an effective mechanism for intrinsic surface prestressing, providing a simple, interface-free route for strengthening oxide ceramics. The approach circumvents delamination and interfacial debonding inherent to conventional coating or laminated architectures, offering a scalable pathway for high-performance structural oxide ceramics.
Nano Research•2026•DOI: 10.26599/NR.2026.94908775
Flexible sensors have advanced rapidly to achieve skin-like multisensory capabilities, yet their performance is compromised by strain disturbances and multi-parameter interactions, impeding widespread deployment. Here, we report a flexible fibrous device with a patterned cellular structure enabling anti-strain interference, dual-parameter measurement, and static/dynamic detection. The patterned cellular fibrous structure achieves a heterogenous strain distribution that preserves sensing performance under 10% strain. The sensor integrates a piezoresistive component for low-frequency mechanical stimuli and a thermoelectric response to calibrate temperature-induced resistance changes. A hybrid piezoresistive/piezoelectric sensing platform was experimentally implemented for static pressure persistence and high-frequency acoustic excitation from 0 to 300 Hz. The hybrid tactile sensing achieved the highest material identification accuracy of 98.6%. This work provides valuable proposals to resolve practical constraints in flexible sensor applications, compelling advantages for broader wearable integration.
Nano Research•2026•DOI: 10.26599/NR.2026.94908756
Black phosphorus (BP)-based micro-supercapacitors (MSCs) are promising for wearable electronics but suffer from intrinsic instability and sluggish electron kinetics. Here, we report a two-dimensional phosphorene/bismuthene (2D BP/Bi) heterojunction fabricated via liquid nitrogen-assisted exfoliation and mask-assisted filtration, serving as a robust bifunctional electrode for integrated flexible energy-sensing systems. The heterostructure suppresses nanosheet restacking and enhances interfacial stability through strong P–O–Bi covalent bonding and interfacial synergy. Bismuthene incorporation constructs high-speed electron transport channels, facilitating ion diffusion and charge transfer. The optimized BP/Bi (3:1) electrode achieves a high areal capacitance of 7.6 mF·cm−2 (1.6-fold enhancement over pure BP) and ultra-long lifespan with 92.1% retention after 30,000 cycles. By tailoring the gel electrolyte with DMSO, the device exhibits remarkable freeze-tolerance, maintaining 70% capacitance at −35 °C. An all-flexible integrated system combining the MSC with a pressure sensor using graphene current collectors enables continuous, self-sustained physiological monitoring. This work offers critical insights into interface engineering for high-performance BP-based MSCs and paves the way for extreme-environment wearable applications.
Nano-Micro Letters•2026•DOI: 10.1007/s40820-025-01847-5
Developing biomass platform compounds into high value-added chemicals is a key step in renewable resource utilization. Herein, we report porous carbon-supported Ni-ZnO nanoparticles catalyst (Ni-ZnO/AC) synthesized via low-temperature coprecipitation, exhibiting excellent performance for the selective hydrogenation of 5-hydroxymethylfurfural (HMF). A linear correlation is first observed between solvent polarity (ET(30)) and product selectivity within both polar aprotic and protic solvent classes, suggesting that solvent properties play a vital role in directing reaction pathways. Among these, 1,4-dioxane (aprotic) favors the formation of 2,5-bis(hydroxymethyl)furan (BHMF) with 97.5% selectivity, while isopropanol (iPrOH, protic) promotes 2,5-dimethylfuran production with up to 99.5% selectivity. Mechanistic investigations further reveal that beyond polarity, proton-donating ability is critical in facilitating hydrodeoxygenation. iPrOH enables a hydrogen shuttle mechanism where protons assist in hydroxyl group removal, lowering the activation barrier. In contrast, 1,4-dioxane, lacking hydrogen bond donors, stabilizes BHMF and hinders further conversion. Density functional theory calculations confirm a lower activation energy in iPrOH (0.60 eV) compared to 1,4-dioxane (1.07 eV). This work offers mechanistic insights and a practical strategy for solvent-mediated control of product selectivity in biomass hydrogenation, highlighting the decisive role of solvent-catalyst-substrate interactions.
Nano-Micro Letters•2026•DOI: 10.1007/s40820-025-01999-4
With the widespread application of lithium batteries in electric vehicles and energy storage systems, battery-related safety and reliability issues have become increasingly prominent. Conventional monitoring methods often struggle to address dynamic changes under complex operando. In recent years, flexible sensing technology has emerged as a promising solution for battery health monitoring due to its high adaptability and conformability to complex structures. Meanwhile, empowered by artificial intelligence (AI) for data analysis, the collected data enables efficient and accurate state assessment, offering robust support for accident prevention. Against this background, this paper first explores the integrated applications of flexible sensors in battery health monitoring and their unique advantages in addressing complex battery operating conditions, while analyzing the potential of AI in battery state analysis. Subsequently, it systematically reviews mainstream flexible sensing technologies (e.g., film sensors, thermocouples, and optical fiber sensors), elucidating their mechanisms for revealing intricate internal battery processes during operation. Finally, the paper discusses AI’s role in enhancing monitoring efficiency and accuracy, and envisions future research directions and application prospects. This work aims to provide technical references for the battery health monitoring field as well as promote the application of flexible sensing technologies in improving battery system safety and reliability.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-025-01951-6
Perovskite solar cells have achieved remarkable progress in photovoltaic efficiency. However, interfacial defects at the buried and upper interfaces of perovskite layer remain a critical challenge, leading to charge recombination, ion migration, and iodine oxidation. To address this, we propose a novel all-in-one modification strategy employing ammonia borane (BNH6) as a multifunctional complex. By incorporating BNH6 at both buried and upper interfaces simultaneously, we achieve dual-interfacial defect passivation and iodide oxidation suppression through three key mechanisms: (1) hydrolysis-induced interaction with SnO2, (2) coordination with Pb2+, and (3) inhibition of I− oxidation. This approach significantly enhances device performance, yielding a champion power conversion efficiency (PCE) of 26.43% (certified 25.98%). Furthermore, the unencapsulated device demonstrates prominent enhanced operation stability, maintaining 90% of its initial PCE after 500 h under continuous illumination. Notably, our strategy eliminates the need for separate interface treatments, streamlining fabrication and offering a scalable route toward high-performance perovskite photovoltaics.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-025-01834-w
Refractory wounds cause significant harm to the health of patients and the most common treatments in clinical practice are surgical debridement and wound dressings. However, certain challenges, including surgical difficulty, lengthy recovery times, and a high recurrence rate persist. Conductive hydrogel dressings with combined monitoring and therapeutic properties have strong advantages in promoting wound healing due to the stimulation of endogenous current on wounds and are the focus of recent advancements. Therefore, this review introduces the mechanism of conductive hydrogel used for wound monitoring and healing, the materials selection of conductive hydrogel dressings used for wound monitoring, focuses on the conductive hydrogel sensor to monitor the output categories of wound status signals, proving invaluable for non-invasive, real-time evaluation of wound condition to encourage wound healing. Notably, the research of artificial intelligence (AI) model based on sensor derived data to predict the wound healing state, AI makes use of this abundant data set to forecast and optimize the trajectory of tissue regeneration and assess the stage of wound healing. Finally, refractory wounds including pressure ulcers, diabetes ulcers and articular wounds, and the corresponding wound monitoring and healing process are discussed in detail. This manuscript supports the growth of clinically linked disciplines and offers motivation to researchers working in the multidisciplinary field of conductive hydrogel dressings.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-025-01787-0
Neuromorphic devices have shown great potential in simulating the function of biological neurons due to their efficient parallel information processing and low energy consumption. MXene-Ti3C2Tx, an emerging two-dimensional material, stands out as an ideal candidate for fabricating neuromorphic devices. Its exceptional electrical performance and robust mechanical properties make it an ideal choice for this purpose. This review aims to uncover the advantages and properties of MXene-Ti3C2Tx in neuromorphic devices and to promote its further development. Firstly, we categorize several core physical mechanisms present in MXene-Ti3C2Tx neuromorphic devices and summarize in detail the reasons for their formation. Then, this work systematically summarizes and classifies advanced techniques for the three main optimization pathways of MXene-Ti3C2Tx, such as doping engineering, interface engineering, and structural engineering. Significantly, this work highlights innovative applications of MXene-Ti3C2Tx neuromorphic devices in cutting-edge computing paradigms, particularly near-sensor computing and in-sensor computing. Finally, this review carefully compiles a table that integrates almost all research results involving MXene-Ti3C2Tx neuromorphic devices and discusses the challenges, development prospects, and feasibility of MXene-Ti3C2Tx-based neuromorphic devices in practical applications, aiming to lay a solid theoretical foundation and provide technical support for further exploration and application of MXene-Ti3C2Tx in the field of neuromorphic devices.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-025-01784-3
Nickel-based cathodes in aqueous nickel-zinc batteries typically suffer from sluggish reaction kinetics and limited energy density. In situ introduction of metal phosphides and rational construction of heterostructures can effectively promote electron/ion transport. However, the complex evolution of phosphidation and intractable phosphidizing degree greatly affect the composition of active phase, active sites, charge transfer rate, and ion adsorption strength of cathodes. Herein, the critical bimetallic phosphide layer (CBPL) is constructed on the NiCo-layered double hydroxide (NiCo-LDH) skeleton by a controllable anion-exchange strategy, yielding a novel nanohybrid cathode (NiCo-P1.0, 1.0 representing the mass ratio of Na2H2PO2 to NiCo-LDH). The high-conductivity CBPL with the inner NiCo-LDH forms extensive heterostructures, effectively regulating the electronic structure via charge transfer, thereby improving electrical conductivity. Remarkably, the CBPL exhibits unexpected electrochemical activity and synergizes with NiCo-LDH for electrode reactions, ultimately delivering extra energy. Benefiting from the bifunctional CBPL, NiCo-P1.0 delivers an optimal capacity of 286.64 mAh g−1 at 1C (1C = 289 mAh g−1) and superb rate performance (a capacity retention of 72.22% at 40C). The assembled NiCo-P1.0//Zn battery achieves ultrahigh energy/power density (503.62 Wh kg−1/18.62 kW kg−1, based on the mass loading of active material on the cathode), and the flexible quasi-solid-state pouch cell validates its practicality. This work demonstrates the superiority of bifunctional CBPL for surface modification, providing an effective and scalable compositing strategy in achieving high-performance cathodes for aqueous batteries.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-025-01790-5
Low ionic conductivity is a major obstacle for polymer solid-state electrolytes. In response to this issue, a design concept of enhanced regional electric potential difference (EREPD) is proposed to modulate the interaction of nanofillers with other components in the composite polymer solid-state electrolytes (CPSEs). While ensuring the periodic structure of the graphdiyne (GDY) backbone, methoxy-substituted GDY (OGDY) is prepared by an asymmetric substitution strategy, which increases the electric potential differences within each repeating unit of GDY. The staggered distributed electron-rich regions and electron-deficient regions on the two-dimensional plane of OGDY increase the free Li+ concentration through Lewis acid–base pair interaction. The adjacent ERRs and EDRs form uniformly distributed EREPDs, creating a continuous potential gradient that synergistically facilitates the efficient migration of Li+. Impressively, the OGDY/poly(ethylene oxide) (PEO) exhibits a high ionic conductivity (1.1 × 10−3 S cm−1) and ion mobility number (0.71). In addition, the accelerated Li+ migration promotes the formation of uniform and dense SEI layers and inhibits the growth of lithium dendrites. As a proof of concept, Li||Li symmetric cell and Li||LiFePO4 full cell and pouch cell assembled with OGDY/PEO exhibit good performance, highlighting the effectiveness of our EREPD design strategy for improving CPSEs performance.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-025-01771-8
Daytime radiative cooling is an eco-friendly and passive cooling technology that operates without external energy input. Materials designed for this purpose are engineered to possess high reflectivity in the solar spectrum and high emissivity within the atmospheric transmission window. Unlike broadband-emissive daytime radiative cooling materials, spectrally selective daytime radiative cooling (SSDRC) materials exhibit predominant mid-infrared emission in the atmospheric transmission window. This selective mid-infrared emission suppresses thermal radiation absorption beyond the atmospheric transmission window range, thereby improving the net cooling power of daytime radiative cooling. This review elucidates the fundamental characteristics of SSDRC materials, including their molecular structures, micro- and nanostructures, optical properties, and thermodynamic principles. It also provides a comprehensive overview of the design and fabrication of SSDRC materials in three typical forms, i.e., fibrous materials, membranes, and particle coatings, highlighting their respective cooling mechanisms and performance. Furthermore, the practical applications of SSDRC in personal thermal management, outdoor building cooling, and energy harvesting are summarized. Finally, the challenges and prospects are discussed to guide researchers in advancing SSDRC materials.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-025-01775-4
The hole transport layer (HTL)-free carbon-based perovskite solar cells (C-PSCs) are promising for commercialization owing to their excellent operational stability and simple fabrication process. However, the power conversion efficiencies (PCE) of C-PSCs are inferior to the metal electrode-based devices due to their open-circuit voltage (Voc) loss. Herein, time-resolved confocal photoluminescence microscopy reveals that grain boundary defects at the perovskite/carbon interface are very likely to function as nonradiative recombination centers in HTL-free C-PSCs. A versatile additive Li2CO3 is used to modify the conformal tin oxide electron transport layer for HTL-free C-PSCs. Li2CO3 modification can result in enhanced charge extraction and optimized energy alignment at electron transport layer/perovskite interface, as well as suppressed defects at perovskite top surface due to Li2CO3-induced formation of PbI2 crystallites. Such dual interfacial passivation ultimately leads to significantly improved Voc up to 1.142 V, which is comparable to the metal electrode-based devices with HTL. Moreover, a record-high PCE of 33.2% is achieved for Li2CO3-modified C-PSCs under weak light illumination conditions, demonstrating excellent indoor photovoltaic performance. This work provides a practical approach to fabricate low-cost, highly efficient carbon-based perovskite solar cells.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-025-01704-5
The development of flexible zinc-ion batteries (ZIBs) faces a three-way trade-off among the ionic conductivity, Zn2+ mobility, and the electrochemical stability of hydrogel electrolytes. To address this challenge, we designed a cationic hydrogel named PAPTMA to holistically improve the reversibility of ZIBs. The long cationic branch chains in the polymeric matrix construct express pathways for rapid Zn2+ transport through an ionic repulsion mechanism, achieving simultaneously high Zn2+ transference number (0.79) and high ionic conductivity (28.7 mS cm−1). Additionally, the reactivity of water in the PAPTMA hydrogels is significantly inhibited, thus possessing a strong resistance to parasitic reactions. Mechanical characterization further reveals the superior tensile and adhesion strength of PAPTMA. Leveraging these properties, symmetric batteries employing PAPTMA hydrogel deliver exceeding 6000 h of reversible cycling at 1 mA cm−2 and maintain stable operation for 1000 h with a discharge of depth of 71%. When applied in 4 × 4 cm2 pouch cells with MnO2 as the cathode material, the device demonstrates remarkable operational stability and mechanical robustness through 150 cycles. This work presents an eclectic strategy for designing advanced hydrogels that combine high ionic conductivity, enhanced Zn2+ mobility, and strong resistance to parasitic reactions, paving the way for long-lasting flexible ZIBs.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-024-01600-4
Reversible solid oxide cells (RSOCs) are capable of converting various energy resources, between electricity and chemical fuels, with high efficiency and flexibility, making them suitable for grid balancing and renewable energy consumption. However, the practical application of RSOCs is still limited by the insufficient activity and stability of the electrodes in different operating modes. Herein, a highly efficient symmetrical electrode composed of La0.3Sr0.6Ti0.1Co0.2Fe0.7O3−δ (LSTCF) nanofibers and in situ exsolved Co3Fe7 nanoparticles is developed for boosting the performance of RSOCs. The reversible phase transition, high activity and stability of the electrode have been confirmed by a combination of experimental (e.g., transmission electron microscopy and X-ray absorption fine structure) and computational studies. Electrolyte-supported RSOCs with the symmetrical electrode demonstrate excellent catalytic activity and stability, achieving a high peak power density of 0.98 W cm−2 in the fuel cell mode using H2 as the fuel (or 0.53 W cm−2 using CH4 as the fuel) and a high current density of 1.09 A cm−2 at 1.4 V in the CO2 electrolysis mode (or 1.03 A cm−2 at 1.3 V for H2O electrolysis) at 800 °C while maintaining excellent durability for over 100 h.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-025-01670-y
In the realm of virtual reality (VR), haptic feedback is integral to enhance the immersive experience; yet, existing wearable devices predominantly rely on skin contact feedback, lacking options for compact and non-contact breeze-sense feedback. Herein, we propose a compact and non-contact working model piezoelectret actuator for providing a gentle and safe breeze sensation. This easy-fabricated and flexible breeze-sense generator with thickness around 1 mm generates air flow pressure up to ~163 Pa, which is significantly sensed by human skin. In a typical demonstration, the breeze-sense generators array showcases its versatility by employing multiple coded modes for non-contact information transmitting. The thin thinness and good flexibility facilitate seamless integration with wearable VR setups, and the wearable arrays empower volunteers to precisely perceive the continuous and sudden breeze senses in the virtual environments. This work is expected to inspire developing new haptic feedback devices that play pivotal roles in human–machine interfaces for VR applications.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-025-01658-8
The construction of carbon nanocoil (CNC)-based chiral-dielectric-magnetic trinity composites is considered as a promising approach to achieve excellent low-frequency microwave absorption. However, it is still challenging to further enhance the low frequency microwave absorption and elucidate the related loss mechanisms. Herein, the chiral CNCs are first synthesized on a three-dimensional (3D) carbon foam and then combined with the FeNi/NiFe2O4 nanoparticles to form a novel chiral-dielectric-magnetic trinity foam. The 3D porous CNC-carbon foam network provides excellent impedance matching and strong conduction loss. The formation of the FeNi-carbon interfaces induces interfacial polarization loss, which is confirmed by the density functional theory calculations. Further permeability analysis and the micromagnetic simulation indicate that the nanoscale chiral magnetic heterostructures achieve magnetic pinning and coupling effects, which enhance the magnetic anisotropy and magnetic loss capability. Owing to the synergistic effect between dielectricity, chirality, and magnetism, the trinity composite foam exhibits excellent microwave absorption performance with an ultrabroad effective absorption bandwidth (EAB) of 14 GHz and a minimum reflection of loss less than −50 dB. More importantly, the C-band EAB of the foam is extended to 4 GHz, achieving the full C-band coverage. This study provides further guidelines for the microstructure design of the chiral-dielectric-magnetic trinity composites to achieve broadband microwave absorption.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-024-01643-7
Two-dimensional Dion-Jacobson (DJ) perovskite has garnered significant attention due to its superior responsivity and operation stability. However, efforts are predominantly focused on discovering new organic spacer to synthesize novel perovskites, while material-form-associated light management, which is crucial for enhancing the photodetector’s efficiency, is largely overlooked. Herein, we introduced surface light management strategy into DJ-type perovskite system by synthesizing surface-patterned BDAPbBr4 (BPB, BDA = NH3(CH2)4NH3) microplates (MPs) using template-assisted space-confined method, which was further elucidated by theoretical optical simulation. By leveraging surface-patterned MPs to enhance light absorption, the BPB-based photodetectors (PDs) achieved remarkable photoresponse in ultraviolet region, marked by a high on/off ratio (~ 5000), superior responsivity (2.24 A W−1), along with large detectivity (~ 1013 Jones) and low detection limit (68.7 nW cm−2). Additionally, the PDs showcased superior light communication and imaging capabilities even under weak-light illumination. Notably, the anisotropic nature of the surface-patterned MPs conferred excellent polarization sensitivity to the PD. These results represented the first demonstration of BPB perovskite in weak-light communication and imaging, as well as in polarized light detection. Our findings offer valuable insights into enhancing photodetector performance and optoelectronic applications through surface light management strategies.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-024-01630-y
Finding ways to produce dense and smooth perovskite films with negligible defects is vital for achieving high-efficiency perovskite solar cells (PSCs). Herein, we aim to enhance the quality of the perovskite films through the utilization of a multifunctional additive in the perovskite anti-solvent, a strategy referred to as anti-solvent additive engineering. Specifically, we introduce ortho-substituted-4′-(4,4″-di-tert-butyl-1,1′:3′,1″-terphenyl)-graphdiyne (o-TB-GDY) as an AAE additive, characterized by its sp/sp2-cohybridized and highly π-conjugated structure, into the anti-solvent. o-TB-GDY not only significantly passivates undercoordinated lead defects (through potent coordination originating from specific high π–electron conjugation), but also serves as nucleation seeds to effectively enhance the nucleation and growth of perovskite crystals. This markedly reduces defects and non-radiative recombination, thereby increasing the power conversion efficiency (PCE) to 25.62% (certified as 25.01%). Meanwhile, the PSCs exhibit largely enhanced stability, maintaining 92.6% of their initial PCEs after 500 h continuous 1-sun illumination at ~23 °C in a nitrogen-filled glove box.
New Carbon Materials (新型炭材料)•2025•DOI: 10.1016/S1872-5805(NCM2025-6-1)
Recent research progress on the use of Ni-based catalysts supported by various carbon materials, such as carbon nanotubes, graphene, and activated carbon, for the hydrogenation of CO2 to CH4 is summarized. The influence of additives and surface modification methods on improving their catalytic performance is discussed as is the reaction mechanism, especially the structure-function relationship produced by the carbon. The review provides a comprehensive directory for the rational design of carbon-supported Ni-based catalysts for the methanation of CO2.
New Carbon Materials (新型炭材料)•2025•DOI: 10.1016/S1872-5805(NCM2025-3-3)
Because of their low electrical conductivity, sluggish ion diffusion, and poor stability, conventional electrode materials are not able to meet the growing demands of energy storage and portable devices. Graphene assembled films (GAFs) formed from graphene nanosheets have an ultrahigh conductivity, a unique 2D network structure, and exceptional mechanical strength, which give them the potential to solve these problems. However, a systematic understanding of GAFs as an advanced electrode material is lacking. This review focuses on the use of GAFs in electrochemistry, providing a comprehensive analysis of their synthesis methods, surface/structural characteristics, and physical properties, and thus understand their structure-property relationships. Their advantages in batteries, supercapacitors, and electrochemical sensors are systematically evaluated, with an emphasis on their excellent electrical conductivity, ion transport kinetics, and interfacial stability. The existing problems in these devices, such as chemical inertness and mechanical brittleness, are discussed and potential solutions are proposed, including defect engineering and hybrid structures. This review should deepen our mechanistic understanding of the use of GAFs in electrochemical systems and provide actionable strategies for developing stable, high-performance electrode materials.
New Carbon Materials (新型炭材料)•2025•DOI: 10.1016/S1872-5805(NCM2024-39-05-07)
There is an urgent need for lithium-ion capacitors (LICs) that have both high energy and high power densities to meet the continuously growing energy storage demands. LICs effectively balance the high energy density of traditional rechargeable batteries with the superior power density and long life of supercapacitors (SCs). Nevertheless, the development of LICs is still hampered by limited kinetic processes and capacity mismatch between the cathode and anode. Metal-organic frameworks (MOFs) and their derivatives have received significant attention because of their extensive specific surface area, different pore structures and topologies, and customizable functional sites, making them compelling candidate materials for achieving high-performance LICs. MOF-derived carbons, known for their exceptional electronic conductivity and large surface area, provide improved charge storage and rapid ion transport. MOF-derived transition metal oxides contribute to high specific capacities and improved electrochemical stability. Additionally, MOF-derived metal compounds/carbons provide combined effects that increase both the capacitive and Faradaic reactions, leading to a superior overall performance. The review begins with an overview of the fundamental principles of LICs, followed by an exploration of synthesis strategies and ligand selection for MOF-based composite materials. It then analyzes the advantages of original MOFs and their derived materials, such as carbon materials and metal compounds, in enhancing LIC performance. Finally, the review discusses the major challenges faced by MOFs and their derivatives in LIC applications and offers future research directions and recommendations.
New Carbon Materials (新型炭材料)•2025•DOI: 10.1016/S1872-5805(NCM2024-39-04-06)
Graphitized carbon foams (GFms) were prepared using mesophase pitch (MP) as a raw material by foaming (450 °C), pre-oxidation (320 °C), carbonization (1 000 °C) and graphitization (2 800 °C). The differences in structure and properties of GFms prepared from different MP precursors pretreated by ball milling or liquid phase extraction were investigated and compared, and semi-quantitative calculations were conducted on the Raman and FTIR spectra of samples at each preparation stage. Semi-quantitative spectroscopic analysis provided detailed information on the structure and chemical composition changes of the MP and GFm derived from it. Combined with microscopic observations, the change from precursor to GFm was analyzed. The results showed that ball milling concentrated the distribution of aromatic molecules in the pitch, which contributed to uniform foaming to give a GFm with a uniform pore distribution and good properties. Liquid phase extraction helped remove light components while retaining large aromatics to form graphitic planes with the largest average size during post-treatment to produce a GFm with the highest degree of graphitization and the fewest open pores, giving the best compression resistance (2.47 MPa), the highest thermal conductivity (64.47 W/(m·K)) and the lowest electrical resistance (13.02 μΩ·m). Characterization combining semi-quantitative spectroscopic analysis with microscopic observations allowed us to control the preparation of the MP-derived GFms.
New Carbon Materials (新型炭材料)•2025•DOI: 10.1016/S1872-5805(NCM2024-39-04-10)
Polyether ether ketone (PEEK) has good mechanical properties. However, its high viscosity when molten limits its use because it is hard to process. PEEK nanocomposites containing both carbon nanotubes (CNTs) and polyether imide (PEI) were prepared by a direct wet powder blending method using a vertical injection molding machine. The addition of an optimum amount of PEI lowered the viscosity of the molten PEEK by approximately 50% while producing an increase in the toughness of the nanocomposites, whose strain to failure increased by 129%, and fracture energy increased by 97%. The uniformly dispersed CNT/PEI powder reduced the processing difficulty of PEEK nanocomposites without affecting the thermal resistance. This improvement of the strength and viscosity of PEEK facilitate its use in the preparation of thermoplastic composites.
New Carbon Materials (新型炭材料)•2025•DOI: 10.1016/S1872-5805(NCM2024-39-02-10)
Efficient electrocatalysts with a low cost, high activity and good durability play a crucial role in the use of direct formic acid fuel cells. Pd nanoparticles supported on N-doped hollow carbon nanospheres (NHCNs) embedded in an assembly of N-doped graphene (NG) with a three-dimensional (3D) porous structure by a simple and economical method were investigated as direct formic acid fuel cell catalysts. Because of the unique porous configuration of interconnected layers doped with nitrogen atoms, the Pd/NHCN@NG catalyst with Pd nanoparticles has a large catalytic active surface area, superior electrocatalytic activity, a high steady-state current density, and a strong resistance to CO poisoning, far surpassing those of conventional Pd/C, Pd/NG, and Pd/NHCN catalysts for formic acid electrooxidation. When the HCN/GO mass ratio was 1∶1, the Pd/NHCN@NG catalyst had an outstanding performance in the catalytic oxidation of formic acid, with an activity 4.21 times that of Pd/C. This work indicates a way to produce superior carbon-based support materials for electrocatalysts, which will be beneficial for the development of fuel cells.
New Carbon Materials (新型炭材料)•2025•DOI: 10.1016/S1872-5805(NCM2026-41-02-05)
Due to the inherent limited dielectric loss of carbon materials, their attenuation ability and impedance matching are often unsatisfactory. To overcome these problems, hierarchical structures and combined microwave loss mechanisms have attracted considerable attention in the development of high performance microwave absorbers. In this work, biomass cattail was used as a sustainable precursor to synthesize nitrogen-doped carbon nanotube arrays decorated with Fe3C nanoparticles by chemical vapor deposition. The resulting cattail-derived carbon-based tubular composites (Fe3C@NCNTs/CMTs) feature a unique Fe3C-coated, nitrogen-doped carbon nanotube structure. The influence of crystallinity, tuned by calcination at different temperatures, on microwave absorption was investigated. Remarkably, at 800 °C, Fe3C@NCNTs/CMTs achieved a minimum reflection loss of –35.8 dB and an effective absorption bandwidth of 7.02 GHz at a thickness of only 1.7 mm, even at an ultralow filler loading of 10%, effectively covering the entire Ku band and part of the X band. The excellent microwave absorption performance is attributed to the combined contribution of increased magnetic loss and multiple dielectric polarization mechanisms. This study shows a promising strategy for designing biomass-derived carbon-based broadband microwave absorbing materials.
Journal of Semiconductors (半导体学报 - 中国科学院半导体研究所)•2025•DOI: 10.1088/1674-4926/25010024
In this work, we design and fabricate AlGaN/GaN-based Schottky barrier diodes (SBDs) on a silicon substrate with a trenched n+-GaN cap layer. With the developed physical models, we find that the n+-GaN cap layer provides more electrons into the AlGaN/GaN channel, which is further confirmed experimentally. When compared with the reference device, this increases the two-dimensional electron gas (2DEG) density by two times and leads to a reduced specific ON-resistance (Ron,sp) of ~2.4 mΩ·cm2. We also adopt the trenched n+-GaN structure such that partial of the n+-GaN is removed by using dry etching process to eliminate the surface electrical conduction when the device is set in the off-state. To suppress the surface defects that are caused by the dry etching process, we also deposit Si3N4 layer prior to the deposition of field plate (FP), and we obtain a reduced leakage current of ~8 × 10−5 A·cm−2 and breakdown voltage (BV) of 876 V. The Baliga’s figure of merit (BFOM) for the proposed structure is increased to ~319 MW·cm−2. Our investigations also find that the pre-deposited Si3N4 layer helps suppress the electron capture and transport processes, which enables the reduced dynamic Ron,sp.
Journal of Semiconductors (半导体学报 - 中国科学院半导体研究所)•2025•DOI: 10.1088/1674-4926/25010010
Infrared and terahertz waves constitute pivotal bands within the electromagnetic spectrum, distinguished by their robust penetration capabilities and non-ionizing nature. These wavebands offer the potential for achieving high-resolution and non-destructive detection methodologies, thereby possessing considerable research significance across diverse domains including communication technologies, biomedical applications, and security screening systems. Two-dimensional materials, owing to their distinctive optoelectronic attributes, have found widespread application in photodetection endeavors. Nonetheless, their efficacy diminishes when tasked with detecting lower photon energies. Furthermore, as the landscape of device integration evolves, two-dimensional materials struggle to align with the stringent demands for device superior performance. Topological materials, with their topologically protected electronic states and non-trivial topological invariants, exhibit quantum anomalous Hall effects and ultra-high carrier mobility, providing a new approach for seeking photosensitive materials for infrared and terahertz photodetectors. This article introduces various types of topological materials and their properties, followed by an explanation of the detection mechanism and performance parameters of photodetectors. Finally, it summarizes the current research status of near-infrared to far-infrared photodetectors and terahertz photodetectors based on topological materials, discussing the challenges faced and future prospects in their development.
Transactions of Nonferrous Metals Society of China (中国有色金属学报)•2025•DOI: 10.1016/S1003-6326(25)67022-1
Based on the application requirements for porous dental implants, four porous structures of gyroid, RD (rhombic dodecahedron), cubic, and CHC (three identical cylinders hollow cubic) for porous titanium implants have been designed and fabricated using selective laser melting (SLM) technology. Typically, the unit cell dimensions range from 0.5 to 1.6 mm, with pore diameters between 300 and 900 µm, achieving porosities of 60%−80%. The influence of porous structures with small unit cell on scaffold formability and mechanical properties was investigated through compression, torsion tests as well as finite element simulations. Consequently, gyroid scaffolds exhibit optimal formability with the lowest porosity and pore deviation. With the same porosity, gyroid and RD scaffolds exhibit lower compressive strength than cubic and CHC scaffolds, yet their torsional properties show an inverse relationship. Moreover, gyroid scaffolds possess the highest torque but the lowest compressive strength and elastic modulus. The gyroid scaffold with 60% porosity shows a modulus of 3.96 GPa, matching bone modulus of 0−30 GPa. Its compressive strength reaches 176.3 MPa, exceeding that of bone by 100 MPa. Additionally, the torque for the d4.0 mm implant is 2.22 N·m, approaching the FDA safe torque of 2.3 N·m. Therefore, the gyroid represents the most ideal structure for porous dental implants.
Transactions of Nonferrous Metals Society of China (中国有色金属学报)•2025•DOI: 10.1016/S1003-6326(25)66979-2
The influence of varying levels of impurity elements on the hot corrosion resistance of the DD98M alloy in Na2SO4+NaCl salt at 950 °C was investigated. The results indicate that the corrosion resistance of the DD98M alloy significantly decreases with an increase in impurity content, and the presence of nitrogen leads to an increase in alloy porosity. These porosities promote the rapid diffusion of molten salt and oxygen into the alloy, resulting in a bilateral diffusion of oxygen and sulfur, which leads to an accumulation of these elements at the oxide−matrix interface. This process contributes to the formation and propagation of interfacial cracks. A growth model was developed for hot corrosion products in alloys with varying impurity elements.
Int. Journal of Mining Science and Technology (采矿与安全工程)•2025•DOI: 10.1016/j.ijmst.2025.01.002
Under submerged conditions, compared with traditional self-excited oscillating pulsed waterjets (SOPWs), annular fluid-enhanced self-excited oscillating pulsed waterjets (AFESOPWs) exhibit a higher surge pressure through self-priming. However, their pressure frequency and cavitation characteristics remain unclear, resulting in an inability to fully utilize resonance and cavitation erosion to break coal and rock. In this study, high-frequency pressure testing, high-speed photography, and large eddy simulation (LES) are used to investigate the distribution of the pressure frequency band, evolution law of the cavitation cloud, and its regulation mechanism of a continuous waterjet, SOPW, and AFESOPW. The results indicated that the excitation of the plunger pump, shearing layer vortex, and bubble collapse corresponded to the three high-amplitude frequency bands of the waterjet pressure. AFESOPWs have an additional self-priming frequency that can produce a larger amplitude under a synergistic effect with the second high-amplitude frequency band. A better cavitation effect was produced after self-priming the annulus fluid, and the shedding frequency of the cavitation clouds of the three types of waterjets was linearly related to the cavitation number. The peak pressure of the waterjet and cavitation erosion effect can be improved by modulating the waterjet pressure oscillation frequency and cavitation shedding frequency.
Journal of Semiconductors (半导体学报 - 中国科学院半导体研究所)•2025•DOI: 10.1088/1674-4926/25030023
The unique structure and exceptional properties of two-dimensional (2D) materials offer significant potential for transformative advancements in semiconductor industry. Similar to the reliance on wafer-scale single-crystal ingots for silicon-based chips, practical applications of 2D materials at the chip level need large-scale, high-quality production of 2D single crystals. Over the past two decades, the size of 2D single-crystals has been improved to wafer or meter scale, where the nucleation control during the growth process is particularly important. Therefore, it is essential to conduct a comprehensive review of nucleation control to gain fundamental insights into the growth of 2D single-crystal materials. This review mainly focuses on two aspects: controlling nucleation density to enable the growth from a single nucleus, and controlling nucleation position to achieve the unidirectionally aligned islands and subsequent seamless stitching. Finally, we provide an overview and forecast of the strategic pathways for emerging 2D materials.
Int. Journal of Mining Science and Technology (采矿与安全工程)•2025•DOI: 10.1016/j.ijmst.2025.08.010
The spatiotemporal characterization of plume sedimentation and microorganisms is critical for developing plume ecological monitoring models. To address the limitations of traditional methods in obtaining high-quality sediment, a novel sampling system with 6000 m operational capability and three-month endurance was developed. It is equipped with three sediment samplers and a set of formaldehyde preservation solution injection devices. The system is controlled by a low-power, timing-triggered controller. To investigate low-disturbance rheological mechanisms, gap-controlled rheological tests were conducted to optimize the structural design of the sampling and sealing assembly. Stress-controlled shear rheological tests were employed to investigate the mechanisms governing yield stress in sediments under varying temperature conditions and boundary roughness. Additionally, the coupled Eulerian-Lagrangian (CEL) method and sediment rheological constitutive models were employed to simulate tube-soil interaction dynamics and sediment disturbance. The radial heterogeneity of sediment disturbance and friction variation of the sampling tube were revealed. The tube was completely "plugged" at a penetration depth of 261 mm, providing critical data support for penetration depth parameters. The deep-sea pressure test and South China Sea field trials demonstrated the system's capability to collect and preserve quantitative time-series sediment samples with high fidelity.
China Foundry•2025•DOI: 10.1007/s41230-025-4207-x
The GH3536 (Hastelloy-X) nickel-based superalloy is increasingly applied in the aerospace industry due to its exceptional combination of excellent oxidation resistance and high-temperature strength. Laser powder bed fusion (LPBF) is an additive manufacturing (AM) technology for producing metallic components with complex shapes using layer-by-layer manufacture principle. The debate has long prevailed as to research on eliminating anisotropy in the forming of GH3536 alloy through LPBF technology. In this study, the anisotropy of microstructure and mechanical properties of GH3536 alloy formed by LPBF was investigated using different scanning strategies (0°, 90°, 67°, checkerboard, and contour). The scanning strategy was optimized to reduce the weaving differences between the horizontal and vertical directions of the microstructure of the LPBF formed GH3536 alloy, which in turn reduces the anisotropy of the properties in both directions. The results of the tensile specimens indicate that except for the horizontal specimens produced using the contour scanning strategy, the strength of all other specimens exceeds that of the vertical specimens. Additionally, differences in elongation are observed, demonstrating that the GH3536 alloy fabricated via laser powder bed fusion exhibits anisotropic properties. According to electron backscatter diffraction (EBSD) analysis, the grain boundary strengthening and geometrically necessary dislocations (GNDs) impede dislocation motion during tensile deformation along the horizontal direction. Consequently, this mechanism negatively affects both the tensile strength and ductility in that orientation. The anisotropy in tensile strength and plasticity is attributed to the different crack sensitivities in the two tensile directions. In addition, specimens molded using different scanning strategies exhibit varying degrees of anisotropy, strength, and elongation due to different degrees of texture strengthening, grain boundary strengthening, and dislocation strengthening effects. Regardless of the stretching direction, the combined tensile properties of the 0° and contoured specimens are the worst under the room temperature and 815 °C stretching conditions. The 67° specimens exhibit the best combined tensile properties. Therefore, the anisotropy of the mechanical properties of the LPBF formed GH3536 alloy can be positively mitigated by modulating the scanning strategy.
China Foundry•2025•DOI: 10.1007/s41230-025-4006-4
To enhance the high-temperature oxidation resistance and mechanical properties of a second-generation nickel-based superalloy, various concentrations of lanthanum (La) ranging from 5.0×10-5wt.% to 3.4×10-4wt.% are added to the alloy. The microstructure of the nickel-based single crystal superalloy with trace of La was examined by means of SEM, EDS and TEM. Results show the addition of La decreases the segregation of elements and increases the amount of γ/γ′ eutectics of the as-cast alloy, and in the interdendritic region, the growth of eutectics is accompanied by the growth of strip clusters composed of Ni5La and Ni3Ta. As the La content in the alloy increases, the proportion of Ni5La in the cluster increases. After heat treatment, incipient melting occurs in the cluster regions, leading to an increase in microporosity compared to the original as-cast samples. Furthermore, the heat treatment alters the shape of the clusters from a strip morphology to an elliptical one, and it changes their composition from Ni5La and Ni3Ta to a combination of Ni5La, Ni3Ta, and MC carbides.
Int. Journal of Minerals, Metallurgy and Materials (矿物冶金与材料学报)•2025•DOI: 10.1007/s12613-024-2971-z
The equilibrium phase relations of the CaO–SiO2–TiO2–5wt%Fe3O4 system were experimentally investigated at 1400°C in air. High-temperature equilibration-quenching techniques were employed in an electric MoSi2 resistance heated furnace, with phase composition analysis conducted using an electron probe microanalyzer and X-ray diffraction. A single liquid region, liquid–solid phase equilibria regions (including liquid–tridymite, liquid–rutile, liquid–perovskite, and liquid–wollastonite), and three-phase equilibria regions of liquid–tridymite–rutile and liquid–rutile–perovskite were found. The 1400°C isothermal sections of the CaO–SiO2–TiO2–5wt%Fe3O4 system in air were projected. The present experimental results exhibited good agreement with the calculation results obtained from FactSage.
Int. Journal of Minerals, Metallurgy and Materials (矿物冶金与材料学报)•2025•DOI: 10.1007/s12613-025-3100-3
Sn-based solder is a widely used interconnection material in the field of electronic packaging; however, the performance requirements for these solders are becoming increasingly demanding owing to the rapid development in this area. In recent years, the addition of micro/nanoreinforcement phases to Sn-based solders has provided a solution to improve the intrinsic properties of the solders. This paper reviews the progress in Sn-based micro/nanoreinforced composite solders over the past decade. The types of reinforcement particles, preparation methods of the composite solders, and strengthening effects on the microstructure, wettability, melting point, mechanical properties, and corrosion resistance under different particle-addition levels are discussed and summarized. The mechanisms of performance enhancement are summarized based on material-strengthening effects such as grain refinement and second-phase dispersion strengthening. In addition, we discuss the current shortcomings of such composite solders and possible future improvements, thereby establishing a theoretical foundation for the future development of Sn-based solders.
Int. Journal of Minerals, Metallurgy and Materials (矿物冶金与材料学报)•2025•DOI: 10.1007/s12613-024-3058-6
In-situ TiB2/Al–Cu composite was processed by multidirectional forging (MDF) for six passes. The microstructure evolution of the forged workpiece was examined across various regions. The mechanical properties of the as-cast and MDFed composites were compared, and their strengthening mechanisms were analyzed. Results indicate that the grain refinement achieved through the MDF process is mainly due to the subdivision of the original grains through mechanical geometric fragmentation and the occurrence of dynamic recrystallization (DRX). DRX grains are formed through discontinuous DRX, continuous DRX, and recrystallization induced by particle-stimulated nucleation. A rise in accumulated equivalent strain results in finer α-Al grains and a more uniform distribution of TiB2 particles, which enhance the Vickers hardness of the composite. In addition, the tensile properties of the MDFed composite significantly improve compared with those of the as-cast composites, with ultimate tensile strength and yield strength increasing by 51.2% and 54%, respectively. This enhancement is primarily due to grain refinement strengthening and dislocation strengthening achieved by the MDF process.
Chinese Journal of Mechanical Engineering•2025•DOI: 10.1186/s10033-025-01239-1
In the context of Industry 5.0, more emphasis is placed on human-centric smart manufacturing patterns. Product design is a vital phase of smart manufacturing, involving user engagement is an essential factor in enhancing design quality and fostering innovation. With user involvement in-depth, dynamically changing user requirements and feedback bring new problems to the design process, and the traditional linear solving process cannot perceive such variations timely, which causes hysteresis in the solution. The design solution’s hysteresis affects the consensus achievement process between the designer and user, further prolonging the iteration cycle. To address this issue, a human-centric product conceptual design model is proposed for the timely translation of such variations into design solutions. In this model, design problems are formed by centering on user requirements, designer and user collaboratively solve the problems to form design solutions. Through a cycle of problem-driven, knowledge-supported, and solution evaluation, new problems are solved promptly to achieve progressive solution convergence, which clarifies the iterative evolution process and improves iterative efficiency. To verify the effectiveness of the model, a natural gas well foaming agent automatic filling device design is presented.
Chinese Journal of Mechanical Engineering•2025•DOI: 10.1186/s10033-025-01352-1
The interaction between the airflow and train influences the aerodynamic characteristics and dynamic performance of high-speed trains. This study focused on the fluid-solid coupling effect of airflow and HST, and proposed a co-simulation (CS) approach between computational fluid dynamics and multi-body dynamics. Firstly, the aerodynamic model was developed by employing overset mesh technology and the finite volume method, and the detailed train-track coupled dynamic model was established. Then the User Data Protocol was adopted to build data communication channels. Moreover, the proposed CS method was validated by comparison with a reported field test result. Finally, a case study of the HST exiting a tunnel subjected to crosswind was conducted to compare differences between CS and offline simulation (OS) methods. In terms of the presented case, the changing trends of aerodynamic forces and car-body displacements calculated by the two methods were similar. Differences mainly lie in aerodynamic moments and transient wheel-rail impacts. Maximum pitching and yawing moments on the head vehicle in the two methods differ by 21.1 kN∙m and 29.6 kN∙m, respectively. And wheel-rail impacts caused by sudden changes in aerodynamic loads are significantly severer in CS. Wheel-rail safety indices obtained by CS are slightly greater than those by OS. This research proposes a CS method for aerodynamic characteristics and dynamic performance of the HST in complex scenarios, which has superiority in computational efficiency and stability.
Chinese Journal of Mechanical Engineering•2025•DOI: 10.1186/s10033-025-01223-9
To investigate the forward kinematics problem of parallel mechanisms with complex limbs and to expand the applicability of the powerful tool of Conformal Geometric Algebra (CGA), a CGA-based modeling and solution method for a class of parallel platforms with 3-RE structure after locking the actuated joints is proposed in this paper. Given that the angle between specific joint axes of limbs remains constant, a set of geometric constraints for the forward kinematics of parallel mechanisms (PM) are determined. After translating unit direction vectors of these joint axes to the common starting point, the geometric constraints of the angle between the vectors are transformed into the distances between the endpoints of the vectors, making them easier to handle. Under the framework of CGA, the positions of key points that determine the position and orientation of the moving platform can be intuitively determined by the intersection, division, and duality of basic geometric entities. By employing the tangent half-angle substitution, the forward kinematic analysis of the parallel mechanisms leads to a high-order univariate polynomial equation without the need for any complex algebraic elimination operations. After solving this equation and back substitution, the position and pose of the MP can be obtained indirectly. A numerical case is utilized to confirm the effectiveness of the proposed method.
Journal of Central South University•2025•DOI: 10.1007/s11771-025-6049-5
The influence of train height on aerodynamic characteristics of high-speed train (HST) is significant in crosswind environments. This study employed the improved delayed detached eddy simulation (IDDES) turbulence model to analyze the aerodynamic characteristics of trains with three different heights under a crosswind of 20 m/s. The numerical model was validated through comparison with wind tunnel experimental data. A comprehensive analysis was conducted on the characteristics of the flow field around trains, surface pressure distribution, and aerodynamic loads for trains with different heights. Results indicate that the side force coefficient increased by up to 61.54% with an increase in train height from 3.89 to 4.19 m. Compared with the 3.89 m case, the roll moment coefficient on the head, middle, and tail cars for 4.19 m cases increased by 18.11%, 24.78% and 34.23%, respectively. The increase in train height widens the impact width of the leading car’s front vortex on the leeward side and intensifies the helical shedding and coupling interactions of two vortices in the wake, leading to an increase in the intensity and extent of wake flow in both vertical and longitudinal directions. Additionally, the increase in height shifted the flow separation point on the leeward side, moving vortices farther from the train, expanding the back-flow region, and intensifying Reynolds stress and turbulent fluctuations on the leeward side, which adversely impacted train stability and safety. The research findings can provide a reference for the design of train configurations and the assessment of dynamic performance in crosswind environments.
Journal of Central South University•2025•DOI: 10.1007/s11771-025-6069-1
High-speed railway (HSR) bridge piers in high-altitude areas frequently face the challenge of early-age thermal cracking. This study employed numerical simulation methods to analyze the early-age temperature field, deformation field, and cracking risk of HSR bridge piers, considering three factors: binder content, cement types, and formwork types. The results show that the cracking risk slightly increases with a higher content of cementitious materials. However, this risk can be mitigated by selecting cements with lower heat of hydration and formwork materials with higher thermal conductivity. A variable termed “representative temperature rise for unit concrete” was proposed to integrate these three factors and comprehensively reflect the inherent thermal property of the pier. Subsequently, three linear regression models for predicting the demolding age of HSR bridge piers were established. These models empower engineers to determine the earliest feasible time for formwork removal without the need for complex computational analyses.
Journal of Central South University•2025•DOI: 10.1007/s11771-025-6061-9
High-energy continuous wave (CW) lasers are mostly used in laser damage applications, but efficient laser ablation of transparent materials is challenging due to low optical absorption. Considering the potential of femtosecond (fs) laser-induced air filament for high-peak laser transmission over long distances, femtosecond (fs) laser-induced air filaments are combined with a millisecond (ms) laser to form an fs-ms CPL, enhancing the efficiency of sapphire ablation through synchronized spatial-temporal focusing. Experimental results show that ablation efficiency increases with the ms peak power and duty ratio. Excessive thermal stress leads to fragmentation of the sapphire when the ms duty ratio is over 30% at the peak power of 800 W, or when the peak power is over 500 W at a duty ratio of 100%. Also, the mechanism of high-efficiency damage is revealed through in-situ high-speed imaging. According to it, the ablation process went through 4 stages within 1.5 ms: defect-creating, melting and ablation, spattering, and fragmentation. Finally, the equivalent ablation efficiency of the fs-ms CPL is as high as 1.73×107 μm3/J, about 28 times higher compared to the fs laser only. The CPL damage method explored in this paper can provide theoretical guidance for efficient laser damage of transparent materials.
Int. Journal of Minerals, Metallurgy and Materials (矿物冶金与材料学报)•2025•DOI: 10.1007/s12613-025-3104-z
This study analyzes the influence of TiO2 and Al2O3 contents on the microstructure of CaO–SiO2–MgO–xwt%Al2O3–ywt%TiO2 (14 ≤ x ≤ 22, 0 ≤ y ≤ 10) blast furnace slag systems based on the change of slag viscosity, Raman spectroscopy, and molecular dynamics. The Raman spectroscopy results indicate that an increase in TiO2 content leads to the gradual depolymerization of complex silicate structures ( and ) into simpler structures ( and ) in the slag. At the same time, the Al–O–Al bonds in the aluminate structures of the slag also depolymerize into simpler Al–O− forms, resulting in a decrease in the degree of polymerization of both silicates and aluminates. In contrast, an increase in Al2O3 content generally results in an increased degree of polymerization for the silicates and aluminates. Molecular dynamics simulations of the polymerization and depolymerization processes in the microstructure of the blast furnace slag reveal that Si and Al mainly exist in tetrahedral [SiO4]4− and [AlO4]4−, while Ti mainly exists in the form of simple pentacoordinate [TiO5]6− and hexacoordinate [TiO6]8−. TiO2 exhibits basic properties in this system, whereas Al2O3 demonstrates acidic behavior. The addition of TiO2 introduces free oxide ions into the system, causing the bridging oxygens to break into non-bridging oxygens, leading to the depolymerization of complex structures and , which simplifies the slag structure. On the other hand, an increase in Al2O3 content tends to capture or share the oxide ions within the system to form [AlO4]4−, resulting in the polymerization of free oxygens into non-bridging oxygens, which further polymerize into bridging oxygens and lead to the consolidation of simple structures and , resulting in a more complex slag structure. Both Raman spectroscopy analysis and molecular dynamics simulation results indicate that the degree of polymerization of [SiO4]4− and [AlO4]4− in the slag network structure is a crucial factor determining the fluidity of the slag.
Int. Journal of Minerals, Metallurgy and Materials (矿物冶金与材料学报)•2025•DOI: 10.1007/s12613-025-3146-2
Supercapacitors (SCs) stand out among various energy storage devices owing to their high power density and long-term cycling stability. As new two-dimensional material, MXenes have become a research hotspot in recent years owing to their unique structure and rich surface functional groups. Compared with other materials, MXenes are more promising for SCs owing to their tunable precursors, structural stability, and excellent electrical conductivity. However, the rate performance and electrochemical reaction activity of MXene materials are poor, and stacking severely limits their application. Therefore, various modification strategies are employed to improve the electrochemical performance of MXene materials. As the modification strategy of MXene electrode materials often involves increasing the number of ion transport channels to expose more active sites, the packing density is also affected to different degrees. Therefore, achieving a balance between high volumetric capacitance and rapid ion transport has become a key issue for the application of MXene-based SCs in wearable devices and microdevices. In this paper, the latest progress in the preparation methods and modification strategies of MXenes in recent years is reviewed with the aim of achieving both high volumetric capacitance and high ion transport for expanding the application of MXene-based SCs in microdevices and wearable devices.
Int. Journal of Minerals, Metallurgy and Materials (矿物冶金与材料学报)•2025•DOI: 10.1007/s12613-024-2993-6
Hypoeutectoid steel, a crucial metal structural material, is characterized by the coexisting microstructure of ferrite and pearlite. Driven by multiphase competition and multicomponent characteristics, the intricate interplay among its composition, processing conditions, and microstructure substantially complicates the understanding of austenite decomposition kinetics and elemental diffusion mechanisms during phase transformations. The present study explores the effects of cooling rate, prior austenite grain size, and C content on the component distribution and microstructure evolution during the austenite decomposition of hypoeutectoid steels to address the aforementioned complexities. Results of a multiphase field model reveal that an increase in the cooling rate from 1.0 to 7.0°C/s leads to a reduction in the ferrite proportion and fine pearlite lamellae spacing from 52vol% to 22vol% at 400°C and from 1.01 to 0.67 μm at 660°C, respectively. Concurrently, a decreased prior austenite grain size from 25.23 to 8.92 μm enhances the phase transformation driving force, resulting in small average grain sizes of pearlite clusters and proeutectoid ferrite. Moreover, increasing the C content from 0.22wt% to 0.37wt% decreases the phase transition temperature from 795 to 750°C and enhances the proportion of pearlite phases from 27vol% to 61vol% at 500°C, concurrently refining the spacing of pearlite layers from 1.25 to 0.87 μm at 600°C. Overall, this work aims to elucidate the complex dynamics governing the microstructural transformations of hypoeutectoid steels, thereby facilitating their wide application across different industrial scenes.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-024-01613-z
Organic additives with multiple functional groups have shown great promise in improving the performance and stability of perovskite solar cells. The functional groups can passivate undercoordinated ions to reduce nonradiative recombination losses. However, how these groups synergistically affect the enhancement beyond passivation is still unclear. Specifically, isomeric molecules with different substitution patterns or molecular shapes remain elusive in designing new organic additives. Here, we report two isomeric carbazolyl bisphosphonate additives, 2,7-CzBP and 3,6-CzBP. The isomerism effect on passivation and charge transport process was studied. The two molecules have similar passivation effects through multiple interactions, e.g., P=O···Pb, P=O···H–N and N–H···I. 2,7-CzBP can further bridge the perovskite crystallites to facilitates charge transport. Power conversion efficiencies (PCEs) of 25.88% and 21.04% were achieved for 0.09 cm2 devices and 14 cm2 modules after 2,7-CzBP treatment, respectively. The devices exhibited enhanced operational stability maintaining 95% of initial PCE after 1000 h of continuous maximum power point tracking. This study of isomerism effect hints at the importance of tuning substitution positions and molecular shapes for organic additives, which paves the way for innovation of next-generation multifunctional aromatic additives.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-024-01583-2
The rapid development of communication technology and high-frequency electronic devices has created a need for more advanced electromagnetic interference (EMI) shielding materials. In response to this demand, a study has been conducted to develop multifunctional carbon nanofibers (CNFs)/polyaniline (PANI) aerogels with excellent electromagnetic interference shielding, flame retardancy, and thermal insulation performance. The process involved freeze-drying of electrospun CNFs and PANI nanoparticles followed by in situ growth PANI to coat the CNFs, creating the core–shell structured CNFs/PANI composite fiber and its hybrid aerogels (CP-3@PANI). The interaction between PANI and aniline (ANI) provides attachment sites, allowing additional ANI adsorption into the aerogel for in situ polymerization. This results in PANI uniformly covering the surface of the CNFs, creating a core–shell composite fiber with a flexible CNF core and PANI shell. This process enhances the utilization rate of the ANI monomer and increases the PANI content loaded onto the aerogel. Additionally, effective connections are established between the CNFs, forming a stable, conductive three-dimensional network structure. The prepared CP-3@PANI aerogels exhibit excellent EMI shielding efficiency (SE) of 85.4 dB and specific EMI SE (SE d−1) of 791.2 dB cm3 g⁻1 in the X-band. Due to the synergistic flame-retardant effect of CNFs, PANI, and the dopant (phytic acid), the CP-3@PANI aerogels demonstrate outstanding flame-retardant and thermal insulation properties, with a peak heat release rate (PHRR) as low as 7.8 W g⁻1 and a total heat release of only 0.58 kJ g⁻1. This study provides an effective strategy for preparing multifunctional integrated EMI shielding materials.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-024-01586-z
Aqueous Ni–Zn microbatteries are safe, reliable and inexpensive but notoriously suffer from inadequate energy and power densities. Herein, we present a novel mechanism of superoxide-activated Ni substrate that realizes the redox reaction featuring three-electron transfers (Ni ↔ Ni3+). The superoxide activates the direct redox reaction between Ni substrate and KNiO2 by lowering the reaction Gibbs free energy, supported by in-situ Raman and density functional theory simulations. The prepared chronopotentiostatic superoxidation-activated Ni (CPS-Ni) electrodes exhibit an ultrahigh capacity of 3.21 mAh cm−2 at the current density of 5 mA cm−2, nearly 8 times that of traditional one-electron processes electrodes. Even under the ultrahigh 200 mA cm−2 current density, the CPS-Ni electrodes show 86.4% capacity retention with a Columbic efficiency of 99.2% after 10,000 cycles. The CPS-Ni||Zn microbattery achieves an exceptional energy density of 6.88 mWh cm−2 and power density of 339.56 mW cm−2. Device demonstration shows that the power source can continuously operate for more than 7 days in powering the sensing and computation intensive practical application of photoplethysmographic waveform monitoring. This work paves the way to the development of multi-electron transfer mechanisms for advanced aqueous Ni–Zn batteries with high capacity and long lifetime.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-024-01564-5
Formamidinium lead bromide (FAPbBr3) perovskite nanocrystals (NCs) are promising for display and lighting due to their ultra-pure green emission. However, the thermal quenching will exacerbate their performance degradation in practical applications, which is a common issue for halide perovskites. Here, we reported the heat-resistant FAPbBr3 NCs prepared by a ligand-engineered room-temperature synthesis strategy. An aromatic amine, specifically β-phenylethylamine (PEA) or 3-fluorophenylethylamine (3-F-PEA), was incorporated as the short-chain ligand to expedite the crystallization rate and control the size distribution of FAPbBr3 NCs. Employing this ligand engineering approach, we synthesized high quality FAPbBr3 NCs with uniform grain size and reduced long-chain alkyl ligands, resulting in substantially suppressed thermal quenching and enhanced carrier transportation in the perovskite NCs films. Most notably, more than 90% of the room temperature PL intensity in the 3-F-PEA modified FAPbBr3 NCs film was preserved at 380 K. Consequently, we fabricated ultra-pure green EL devices with a room temperature external quantum efficiency (EQE) as high as 21.9% at the luminance of above 1,000 cd m−2, and demonstrated less than 10% loss in EQE at 343 K. This study introduces a novel room temperature method to synthesize efficient FAPbBr3 NCs with exceptional thermal stability, paving the way for advanced optoelectronic device applications.
Nano-Micro Letters•2025•DOI: 10.1007/s40820-024-01498-y
To address the limitations of contemporary lithium-ion batteries, particularly their low energy density and safety concerns, all-solid-state lithium batteries equipped with solid-state electrolytes have been identified as an up-and-coming alternative. Among the various SEs, organic–inorganic composite solid electrolytes (OICSEs) that combine the advantages of both polymer and inorganic materials demonstrate promising potential for large-scale applications. However, OICSEs still face many challenges in practical applications, such as low ionic conductivity and poor interfacial stability, which severely limit their applications. This review provides a comprehensive overview of recent research advancements in OICSEs. Specifically, the influence of inorganic fillers on the main functional parameters of OICSEs, including ionic conductivity, Li+ transfer number, mechanical strength, electrochemical stability, electronic conductivity, and thermal stability are systematically discussed. The lithium-ion conduction mechanism of OICSE is thoroughly analyzed and concluded from the microscopic perspective. Besides, the classic inorganic filler types, including both inert and active fillers, are categorized with special emphasis on the relationship between inorganic filler structure design and the electrochemical performance of OICSEs. Finally, the advanced characterization techniques relevant to OICSEs are summarized, and the challenges and perspectives on the future development of OICSEs are also highlighted for constructing superior ASSLBs.