Area of research
Renewable Energy, Sustainability and the Environment · Materials Chemistry
Research interest
Research interests include Catalysis, Materials science, Chemistry, Electrocatalyst, Electrochemistry, and Atom (system on chip).
Unveiling the environmental fate and risks of non-heterocyclic sulfacetamide: From a novel degradation mechanism to microecological effects
Sulfur-doping tunes p-d orbital coupling over asymmetric Zn-Sn dual-atom for boosting CO2 electroreduction to formate
Transient pulsed discharge preparation of graphene aerogel supports asymmetric Cu cluster catalysts promote CO2 electroreduction
Single‐Atom Engineering for Synergistic Nucleation and Interfacial Regulation Enabling Durable Anode‐Free Sodium Metal Batteries
Osmotic and <scp>pH</scp> Stress‐Responsive Two‐Component System, <scp>OmpR</scp> / <scp>EnvZ</scp> , Modulates Type <scp>III</scp> Secretion, Biofilm Formation, Swimming Motility and Virulence in <scp> <i>Acidovorax citrulli</i> xjL12 </scp>
Cascade Dual Sites Modulate Local CO Coverage and Hydrogen-Binding Strength to Boost CO<sub>2</sub> Electroreduction to Ethylene
High-density asymmetric iron dual-atom sites for efficient and stable electrochemical water oxidation
Atomically Dispersed Dual-Metal Sites Showing Unique Reactivity and Dynamism for Electrocatalysis
Fully Exposed Iridium Clusters Enable Efficient Hydrogenation of N-Heteroarenes
Identification of Fenton-like active Cu sites by heteroatom modulation of electronic density
A closely packed Pt<sub>1.5</sub>Ni<sub>1−<i>x</i></sub>/Ni–N–C hybrid for relay catalysis towards oxygen reduction
Research progress of asymmetrically coordinated single-atom catalysts for electrocatalytic reactions
Dual-atom Pt heterogeneous catalyst with excellent catalytic performances for the selective hydrogenation and epoxidation
Single-Atom Ru on Al<sub>2</sub>O<sub>3</sub> for Highly Active and Selective 1,2-Dichloroethane Catalytic Degradation
Transforming cobalt hydroxide nanowires into single atom site catalysts
Iridium single-atom catalyst on nitrogen-doped carbon for formic acid oxidation synthesized using a general host–guest strategy
Negative Pressure Pyrolysis Induced Highly Accessible Single Sites Dispersed on 3D Graphene Frameworks for Enhanced Oxygen Reduction
Promoting electrocatalytic methanol oxidation of platinum nanoparticles by cerium modification
Single-atom tailoring of platinum nanocatalysts for high-performance multifunctional electrocatalysis
Regulating the Catalytic Performance of Single-Atomic-Site Ir Catalyst for Biomass Conversion by Metal–Support Interactions
Single Tungsten Atoms Supported on MOF‐Derived N‐Doped Carbon for Robust Electrochemical Hydrogen Evolution
Carbon nitride supported Fe2 cluster catalysts with superior performance for alkene epoxidation
Effect of Protective Agents upon the Catalytic Property of Platinum Nanocrystals
General synthesis and definitive structural identification of MN4C4 single-atom catalysts with tunable electrocatalytic activities
Design of N-Coordinated Dual-Metal Sites: A Stable and Active Pt-Free Catalyst for Acidic Oxygen Reduction Reaction
Rational Design of Single Molybdenum Atoms Anchored on N‐Doped Carbon for Effective Hydrogen Evolution Reaction
Confined Pyrolysis within Metal–Organic Frameworks To Form Uniform Ru<sub>3</sub> Clusters for Efficient Oxidation of Alcohols
Design of ultrathin Pt-Mo-Ni nanowire catalysts for ethanol electrooxidation
Rational Design of Single Molybdenum Atoms Anchored on N‐Doped Carbon for Effective Hydrogen Evolution Reaction
Drastic enhancement on Fenton oxidation of organic contaminants by accelerating Fe(<scp>iii</scp>)/Fe(<scp>ii</scp>) cycle with <scp>l</scp>-cysteine