Area of research
Electrical and Electronic Engineering · Materials Chemistry
Research interest
Research interests include Materials science, Optoelectronics, Heterojunction, Antimony, Nucleation, and Selenide.
PO<sub>4</sub><sup>3−</sup> Tetrahedron Assisted Chelate Engineering for 10.67%‐Efficient Antimony Selenosulfide Solar Cells
Reaction Kinetics Regulation Suppressed Carrier Recombination Loss for High‐Efficient Solution‐Based Antimony Selenosulfide Photovoltaic Devices
Efficient Ternary Organic Photovoltaic Films for Fast Exciton Separation to Generate Free Radicals for Wastewater Treatment
Solution-Processed 2D Titanium Carbide MXene Electrodes for Efficient Quantum Dot Light-Emitting Diodes
Surface energy engineering enables highly efficient antimony selenosulfide solar cells
Sub-Nano Gaδ+ clusters confined by porous carbon spheres and coupled with SnS2 for efficient photocatalytic extraction of uranium
Heterojunction lithiation engineering and diffusion-induced defect passivation for highly efficient Sb<sub>2</sub>(S,Se)<sub>3</sub> solar cells
Simultaneous Band Alignment Modulation and Carrier Dynamics Optimization Enable Highest Efficiency in Cd‐Free Sb<sub>2</sub>Se<sub>3</sub> Solar Cells
Heterogeneous Nucleation Regulation Amends Unfavorable Crystallization Orientation and Defect Features of Antimony Selenosulfide Film for High‐Efficient Planar Solar Cells
A novel design of copper selenide/zinc selenide/Nitrogen-doped carbon derived from MOF for sulfadiazine adsorption: Performance and mechanism
Dual back interface engineering optimized charge carrier dynamics in Sb<sub>2</sub>(S,Se)<sub>3</sub> photocathodes for efficient solar hydrogen production
Heterogeneous Nucleation Regulation Amends Unfavorable Crystallization Orientation and Defect Features of Antimony Selenosulfide Film for High‐Efficient Planar Solar Cells
Carrier recombination suppression and transport enhancement enable high‐performance self‐powered broadband <scp>Sb<sub>2</sub>Se<sub>3</sub></scp> photodetectors
Electron Transport Layer Engineering Induced Carrier Dynamics Optimization for Efficient Cd‐Free Sb<sub>2</sub>Se<sub>3</sub> Thin‐Film Solar Cells
Interface optimization and defects suppression via NaF introduction enable efficient flexible Sb2Se3 thin-film solar cells
An effective engineering with simultaneous carrier density enhancement and interface optimization enables efficient Sb2Se3 solar cells
Regulating the p-n interface quality for Sb2Se3-based quasi-homojunction thin film solar cells by an effective two-step heat treatment process
Study of Sb2Se3/Al interface affected by oxygen exposure
Initial investigation of B4C–TiB2 composites as neutron absorption material for nuclear reactors