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Verified CAS / Academic Author2 Decoded Studies

Prof. ZENG Hui

School of Materials Science and Engineering, University of Shanghai for Science and Technology

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3571-y

Control of Conduction Polarity of BiOBr Single Crystal via Chemical Potential Modulation Chemical Vapor Deposition

Two-dimensional (2D) BiOBr has attracted considerable attention for optoelectronic applications, yet reported 2D BiOBr predominantly exhibits n-type conductivity. The absence of high-quality p-type 2D BiOBr impedes the development of complementary metal oxide semiconductor (CMOS) integrated circuits. This study reports the synthesis of large-scale, high-quality p-type 2D BiOBr single crystals via chemical potential modulation chemical vapor deposition (CPMCVD). By precisely modulating the oxygen chemical potential during growth, the conduction polarity of 2D BiOBr is controllably switched between p-type and n-type. Density functional theory calculations reveal that high oxygen chemical potential promotes bismuth vacancy formation, yielding p-type conductivity, whereas low oxygen chemical potential favors oxygen vacancies, resulting in n-type BiOBr. Field-effect transistors (FETs) fabricated from the p-type crystals exhibit a hole mobility of 26.28 cm2 V−1 s−1 and an on/off ratio exceeding 10^4. The n-type FETs demonstrate an electron mobility of 59.59 cm2 V−1 s−1, surpassing most reported n-type 2D FETs. This CPMCVD approach enables precise polarity control without extrinsic doping, offering a scalable route for integrating 2D BiOBr into CMOS technology.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3511-7

Valorization of 'Waste' MXene through Multifunctional Green Composites with High-Efficiency EMI Shielding

The scalable deployment of MXene-based electromagnetic interference (EMI) shields is constrained by the low yield of delaminated MXenes and the discarding of MXene sediment (MS) by-products, which constitute 80–90 wt.% of synthesized material. This study repurposes MS, comprising incompletely etched MAX phase and multilayer MXenes, into multifunctional nanocomposite films with cellulose nanofibers (CNFs) via aqueous casting. The 80 wt.% MS/CNF film achieves an X-band EMI shielding effectiveness (SE) of 52.3 dB at 0.57 mm thickness, with tunable SE exceeding 53.9 dB at 0.50 mm across X-, Ku-, K-, and Ka-bands. The film exhibits a photothermal response reaching 100 °C within 80 s under 100 mW/cm² irradiation, alongside mechanical robustness and electrical conductivity. By valorizing an industrial waste stream, this approach addresses the cost-ineffectiveness and limited utilization efficiency of MXenes, offering a scalable route for wearable electronics, EMI shielding, and thermal therapy. The findings establish a precedent for waste-to-resource engineering in 2D material composites, with direct implications for reducing precursor costs and enabling high-performance, sustainable shielding solutions.