Area of research
Renewable Energy, Sustainability and the Environment · Materials Chemistry
Research interest
Research interests include Electrocatalysts for Energy Conversion, Catalytic Processes in Materials Science, Advanced battery technologies research, and CO2 Reduction Techniques and Catalysts.
Electrolyte design for reversible zinc metal chemistry
Breaking linear scaling relationships in oxygen evolution via dynamic structural regulation of active sites
Atomic Gap-State Engineering of MoS<sub>2</sub> for Alkaline Water and Seawater Splitting
Transition Metal Carbonitride MXenes Anchored with Pt Sub-Nanometer Clusters to Achieve High-Performance Hydrogen Evolution Reaction at All pH Range
Ultrathin transition metal oxychalcogenide catalysts for oxygen evolution in acidic media
Designer topological-single-atom catalysts with site-specific selectivity
Electric bias-induced reversible configuration of single and heteronuclear dual-atom catalysts on 1Tʹ-MoS2
Selective and Energy Efficient Electrocatalytic CO <sub>2</sub> ‐to‐Ethanol Conversion through Anion Modulation
Optical nonlinearities in excess of 500 through sublattice reconstruction
Packing Engineering of Zirconium Metal‐Organic Cages in Mixed Matrix Membranes for CO<sub>2</sub>/CH<sub>4</sub> Separation
Defying the oxidative-addition prerequisite in cross-coupling through artful single-atom catalysts
Tuning catalyst-support interactions enable steering of electrochemical CO <sub>2</sub> reduction pathways
Breaking the Scaling Relationship in Water Oxidation Enabled by the Electron Buffering Effect of the Fullerene Network
Developing low-resistance ion migration pathways using perfluorinated chain-decorated COFs for enhanced performance in zinc batteries
Ethylene electrosynthesis at low voltages enabled by dopant-induced modulation of the rate-determining step
Unraveling the Role of Atomically Dispersed Ga Species in the Selective Hydrogenation of CO<sub>2</sub> to Methanol over Cu/ZrO<sub>2</sub>
Boosting CO<sub>2</sub> Hydrogenation to Methanol via Enriching the Cu─ZnO Interface on Layered Double Oxides
Inverse In2O3-x/Ni interfaces via Ni3InC0.5 surface reconstruction for efficient CO2 hydrogenation to methanol
Strengthened Ru–O Bonds for Robust Oxygen Evolution in Acid Media
Electrocatalytic CO2 reduction to ethylene in an acid-fed membrane electrode assembly at 10 A
Irreversible Oxygen Redox Enables Lithium Extraction from Ternary Lithium-Ion Battery Cathodes in Water
Motif Editing Reveals Hidden Active Sites in Atomically Precise Metal Nanoclusters for Enhanced Electrocatalysis
Asymmetric C–C Coupling to Drive CO Conversion to Acetate
Industrially viable formate production with 50% lower CO<sub>2</sub> emissions
Atomic Metal‒Nonmetal Catalytic Pair Cooperatively Drives Efficient Enzyme‐Mimetic Catalysis
Atomic Metal‒Nonmetal Catalytic Pair Cooperatively Drives Efficient Enzyme‐Mimetic Catalysis
High-spin Co3+ in cobalt oxyhydroxide for efficient water oxidation
Cascade Dual Sites Modulate Local CO Coverage and Hydrogen-Binding Strength to Boost CO<sub>2</sub> Electroreduction to Ethylene
Spin-related Cu-Co pair to increase electrochemical ammonia generation on high-entropy oxides
Nanocurvature-induced field effects enable control over the activity of single-atom electrocatalysts