Area of research
Renewable Energy, Sustainability and the Environment · Electrical and Electronic Engineering
Research interest
Research interests include Photocatalysis, Doping, Reduction (mathematics), Materials science, and Chemical engineering.
MXene-Assisted NiFe sulfides for high-performance anion exchange membrane seawater electrolysis
Ag-Doped hollow Multi-Shelled structure TiO2 for highly selective photocatalytic CO2 reduction
Engineered Band Alignment of Semiconductive Nanofluidics for Photo‐Electro‐Ion Mediated Ultrahigh Osmotic Energy Harvesting
3D NiCoP flowers assembled by 2D carbon-coated nanosheets as an efficient and stable positive electrode for supercapacitors
Charge redistribution of Mo-incorporated Fe2Ni2N customizes potential-determining step for highly selective electroreduction of nitrobenzene to azoxybenzene
Synergistic Ru/RuO2 heterojunctions stabilized by carbon coating as efficient and stable bifunctional electrocatalysts for acidic overall water splitting
<i>In situ</i> conversion of Co–CoN nanowires into ultrathin 2D nanosheets for highly effective catalytic hydrogenation
Fine-tune the electronic structure in Co-Mo based catalysts to give easily coupled HER and OER catalysts for effective water splitting
Potential Dominates Structural Recombination of Single Atom Mn Sites for Promoting Oxygen Reduction Reaction
Mo−Ni‐based Heterojunction with Fine‐customized d‐Band Centers for Hydrogen Production Coupled with Benzylamine Electrooxidation in Low Alkaline Medium
Tuning electronic structure of Ni3S2 with tungsten doping for high-performance electrooxidation of 5-hydroxymethylfurfural
Recent progress in synergistic electrocatalysis for generation of valuable products based on water cycle
Morphological and heterojunctional engineering of two-dimensional porous Mo-Ni based catalysts for highly effective catalytic reduction of aromatic nitro compounds
The “mediated molecular”-assisted construction of Mo2N islands dispersed on Co-based nanosheets for high-efficient electrocatalytic hydrogen evolution reaction
The synergy of Co-MoN-MgO on 2D carbon sheets for effective catalytic hydrogenation
Potential Dominates Structural Recombination of Single Atom Mn Sites for Promoting Oxygen Reduction Reaction
Vanadium‐Incorporated CoP<sub>2</sub> with Lattice Expansion for Highly Efficient Acidic Overall Water Splitting
Unraveling the mechanism for paired electrocatalysis of organics with water as a feedstock
Vanadium‐Incorporated CoP<sub>2</sub> with Lattice Expansion for Highly Efficient Acidic Overall Water Splitting
Synchronous regulation of morphology and electronic structure of FeNi-P nanosheet arrays by Zn implantation for robust overall water splitting
2D porous molybdenum nitride/cobalt nitride heterojunction nanosheets with interfacial electron redistribution for effective electrocatalytic overall water splitting
Hollow CoP spheres assembled from porous nanosheets as high-rate and ultra-stable electrodes for advanced supercapacitors
Electronic Structure Modulation of Non‐Noble‐Metal‐Based Catalysts for Biomass Electrooxidation Reactions
Integration of heterointerface and porosity engineering to achieve efficient hydrogen evolution of 2D porous NiMoN nanobelts coupled with Ni particles
In situ immobilization of ultra-fine Ag NPs onto magnetic Ag@RF@Fe3O4 core-satellite nanocomposites for the rapid catalytic reduction of nitrophenols
Porous cobalt/tungsten nitride polyhedra as efficient bifunctional electrocatalysts for overall water splitting
Ni2P nanocrystals coated on carbon nanotubes as enhanced lightweight electromagnetic wave absorbers
A “competitive occupancy” strategy toward Co–N<sub>4</sub> single-atom catalysts embedded in 2D TiN/rGO sheets for highly efficient and stable aromatic nitroreduction
Anion‐Modulated HER and OER Activities of 3D Ni–V‐Based Interstitial Compound Heterojunctions for High‐Efficiency and Stable Overall Water Splitting
3D hierarchical V–Ni-based nitride heterostructure as a highly efficient pH-universal electrocatalyst for the hydrogen evolution reaction