Area of research
Renewable Energy, Sustainability and the Environment · Electrical and Electronic Engineering
Research interest
Research interests include Catalysis, Chemistry, Adsorption, Materials science, Electrolysis, and Urea.
Enhancing the dynamic structural evolution of NiOOH on nickel nitride surface for efficient 5-hydroxymethylfurfural oxidation
Balancing the competitive adsorption of urea and OH− over V-NiCo@NC for enhancing urea electrolysis at high current density
Hard Lewis Acid Sites Modulate Competitive Adsorption in Nickel Oxide for Efficiency 5‐hydroxymethylfurfural Oxidation
Revealing the reactant adsorption role of high-valence WO3 for boosting urea-assisted water splitting
Brønsted bases promote interfacial proton transfer for enhanced biomass electrocatalysis
Regulating the Competitive Adsorption of Urea and OH <sup>−</sup> via Brønsted Base Intercalated Nickel Sites for Highly Selective Urea Oxidation
Suppressing oxygen-vacancy-mediated chlorine corrosion for high-current stable seawater electrolysis
Electron delocalization state-induced intermediate selective adsorption for efficient chlorine evolution in seawater electrolysis
Tuning the eg∗ band broadening of the in-situ NiOOH by W doping for efficient biomass electrooxidation
Dual active site bridging adsorption mechanism of Ni-WO3 for boosting urea electrolysis at large current density
Synergistic modulation of hydrogen bond network reconstruction and pH buffering of electrolyte enables highly reversible Zn anode
Constructing a 3D Zinc Anode Exposing the Zn(002) Plane for Ultralong Life Zinc‐Ion Batteries
Regulating Reaction Intermediate Adsorption of Co<sub>0.5</sub>NiS<sub>2</sub>–Ni<sub>3</sub>S<sub>2</sub> Nanorods for Efficient Urea Electrolysis
Modulation of hydroxymethyl/aldehyde groups activation on V2O3 decorated CuCo for 5-hydroxymethylfurfural electrooxidation
Strong electronic coupling of NiCo2O4 and CeO2 regulates the nucleation and decomposition of Li2CO3 for high-rate performance Li–CO2 batteries
Constructing strong interaction between Pt and CeO for boosting ammonia electrolysis based on hard-soft acid-base principle
Comprehensive Understanding of the Electrocatalytic Mechanism for Co/Fe/Cu Doped Ni(OH)<sub>2</sub> on Urea Oxidation Reactions: Theory and Experiment
Constructing Built‐In Electric Field in NiCo<sub>2</sub>O<sub>4</sub>‐CeO<sub>2</sub> Heterostructures to Regulate Li<sub>2</sub>O<sub>2</sub> Formation Routes at High Current Densities
Surface acidity regulation for boosting Li2O2 decomposition towards lower charge overpotential Li–O2 batteries
Regulating Adsorption Behavior of Reactants on NiO/CuO/Co<sub>3</sub>O<sub>4</sub> Surface by Electronic Effect to Promote Electrosynthesis
Boosting Electrochemical Kinetics of NiCo<sub>2</sub> via MoO<sub>2</sub> Modification for Biomass Upgrading Assisted Hydrogen Evolution
General Formation of Interfacial Assembled Hierarchical Micro‐Nano Arrays for Biomass Upgrading‐Coupled Hydrogen Production
Glycine composed anode-electrolyte interphase induced Zn(002) deposition for highly reversible zinc anode
Tailoring the selective adsorption sites of NiMoO by Ni particles for biomass upgrading assisted hydrogen production
Coupling interface engineering with electronic interaction toward high-efficiency H2 evolution in pH-universal electrolytes
Amorphous-crystalline heterostructure: Efficient catalyst for biomass oxidation coupled with hydrogen evolution
Interface Engineering of PtZn Alloy and Nb<sub>2</sub>O<sub>5</sub> for Promoting Ammonia Oxidation Reaction and Hydrogen Evolution Reaction