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JY
Verified CAS / Academic Author3 Decoded Studies

Prof. Jianlei Yang

University of Science and Technology of China

Co-Affiliations:Center for Advanced Solidification Technology (CAST), School of Materials Science and Engineering, Shanghai University, Shanghai 200444, ChinaSchool of Materials Science and Engineering, Harbin Institute of Technology (Weihai)

Research Publications & English Decoded Briefs

Showing 3 publications
Academic Research Journal2026DOI: 10.26599/NR.2026.94908854

Engineering of atomically dispersed Cu on TiO2 via flash Joule heating for solar-driven CO2 reduction

Constructing photocatalysts decorated with atomically dispersed metal species (ADMs) represents a pivotal strategy to maximize atom utilization and tailor active sites for efficient carbon dioxide (CO2) reduction. However, conventional synthesis strategies, typically relying on tedious wet-chemistry or prolonged thermal calcination, often suffer from slow kinetics that inevitably drive the thermodynamic aggregation of metastable single atoms or nanoclusters into less active nanoparticles. Herein, we bypassed these limitations by developing a facile flash Joule heating (FJH) strategy to engineer stable Cu ADMs on TiO2 via an ultrafast and millisecond-scale heating-quenching process. This non-equilibrium thermal shock effectively stabilizes the metal species before thermal diffusion can occur, ensuring a robust metal–support interaction, as unambiguously confirmed by aberration-corrected high-angle annular dark-field scanning transmission electron microscopy (HAADF-STEM) and X-ray absorption fine structure (XAFS) analyses. Consequently, the optimized Cu1.0/TiO2 delivers an approximately 10-fold enhancement in CO evolution compared to pristine TiO2 under simulated solar irradiation. Comprehensive in-situ diffuse reflectance Fourier transform spectroscopy (DRIFTS) and photoelectrochemical measurements reveal that these isolated Cu sites function as superior electron-trapping centers, which significantly accelerate interfacial charge transfer kinetics and promote the activation of critical reaction intermediates. This work establishes FJH as a versatile and scalable platform for overcoming the stability-dispersion trade-off in the rational design of high-performance photocatalysts.

China Foundry2025DOI: 10.1007/s41230-025-4144-8

Effects of Al and C content on κ-carbide precipitation and strengthening in high-Mn low-density steels: A quantitative study

Fe-28Mn-(10-12)Al-(0.8-1.4)C (wt.%) steels were designed to investigate the influence of varying Al and C content on precipitation behavior of κ-carbide and its contribution to the strength of high-Mn low-density steels. Results reveal that both Al and C elements promote κ-carbide precipitation, with C having a more pronounced effect. In near-rapidly solidified 10Al steel strips, increasing C content from 0.8wt.% to 1.4wt.% raises the κ-carbide size from 9.6 nm to 38.2 nm, accompanied by volume fraction increase from 10.2vol.% to 29.8vol.%. In comparison, the average size and volume fraction of κ-carbides in 12Al0.8C steel are only 11.4 nm and 17.8vol.%, respectively. Higher Al and C content reduces the lattice mismatch between austenite and κ-carbides, thus promoting nucleation of κ-carbides. Notably, the increase in C content results in a greater reduction in the Gibbs free energy of κ-carbide, leading to a stronger driving force for κ-carbide formation. Consequently, as the C content increases from 0.8wt.% to 1.4wt.%, the interaction between κ-carbides and dislocations transforms from particle cutting to bypassing, and the maximum precipitation strengthening of κ-carbides reaches 583 MPa. The construction of the relationship between Al and C content and κ-carbide precipitation in this study would provide valuable insights for alloy design of high-Mn steels.

Int. Journal of Minerals, Metallurgy and Materials (矿物冶金与材料学报)2025DOI: 10.1007/s12613-024-2983-8

Evolution of the microstructure and mechanical properties of WE43 magnesium alloy during multipass hot rolling

The evolution of the microstructure and mechanical properties of WE43 magnesium alloy during multipass hot rolling was investigated. Results revealed that multipass hot rolling promoted the formation of small second phases, which was conducive to multiple dynamic recrystallization, consequently improving the microstructure homogeneity and refining the average grain size from 34.3 μm in the initial material to 8.83 μm. Meanwhile, the rolling deformation rotated abundant c-axis of the grains in the normal direction, resulting in a strong fiber texture. The yield strength in the rolling direction (RD) was improved from 164 MPa in the initial material to 324 MPa in the Pass 3 sheet due to fine-grained strengthening, second-phase strengthening, and texture modification. In addition, the distribution maps of the deformation mechanism indicated that the yield strength anisotropy between the RD and the transverse direction (TD) can be attributed to the effects of the texture component on the dominant mechanism. The dominant deformation mechanism during the tensile test was the prismatic slip caused by the strong basal texture of the RD, whereas it had a lesser proportion of prismatic slip under the influence of the weak basal texture of the TD. Compared to the basal slip, the higher critical resolved shear stress of the prismatic slip resulted in a higher increase in yield strength along the RD at approximately 51 MPa than that along the TD (RD: increase of 160 MPa; TD: increase of 109 MPa).