SinoTechIntel Academic Portal
ZY
Verified CAS / Academic Author2 Decoded Studies

Prof. ZHANG Yangyang

School of Intelligent Manufacturing Institute, Nanyang Vocational College of Science and Technology

Research Publications & English Decoded Briefs

Showing 2 publications
Surface Technology (表面技术)2026DOI: 10.16490/j.cnki.issn.1001-3660.2026.09.008

Experimental Study on Halbach Array-based Magnetic-field-assisted Shear Thickening Polishing of Zirconia Ceramics

Zirconia (ZrO2) ceramics are extensively utilized in aerospace, automotive, and biomedical sectors due to exceptional mechanical properties and favorable biocompatibility. However, inherent high hardness and brittleness pose significant challenges for conventional polishing tools in achieving effective surface removal. This study proposes a Halbach-array magnetic-field-assisted shear thickening polishing (HMSTP) method to achieve high-efficiency, low-damage, and low-cost precision polishing of ZrO2 ceramics. Magnetic-field rheological tests were conducted on magnetic shear thickening slurries prepared with carbonyl iron powder at different mass fractions. A slurry containing 4% carbonyl iron powder at a magnetic induction of 150 mT was selected as optimal, demonstrating the most pronounced synergistic enhancement between magnetorheological and shear thickening properties. The Halbach array magnetic field was designed comprising 11 magnets, characterized by a maximum magnetic induction of 192 mT and uniform central distribution. Experimental measurements confirmed an average magnetic induction of 150.2 mT, consistent with simulation. Polishing experiments revealed that increased polishing speed enhances shear rate and material removal rate (MRR), while excessive or insufficient polishing angle impairs slurry flow. Workpiece rotation ensures uniform force distribution but excessive rotation speed diverts slurry, weakening shear thickening. After 60 min of HMSTP, surface roughness (Ra) decreased from 601 nm to 11 nm, and MRR reached 7.26 μm/h. Compared to conventional shear thickening polishing without magnetic field, Ra was reduced by 85.6% and MRR increased by 1.33 times. The HMSTP method effectively improves surface quality and material removal rate of zirconia ceramics, achieving efficient, low-damage, and low-cost processing.

Nano-Micro Letters2025DOI: 10.1007/s40820-025-01775-4

Reducing the Voc Loss of Hole Transport Layer-Free Carbon-Based Perovskite Solar Cells via Dual Interfacial Passivation

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.

Prof. ZHANG Yangyang | Publications & Academic Profile | SinoTechIntel | SinoTechIntel