Area of research
Catalysis · Renewable Energy, Sustainability and the Environment
Research interest
Research interests include Ammonia, Catalysis, Chemistry, Electrochemistry, Materials science, and Ammonia production.
Maximizing Available Active Hydrogen on FeNi Substitutional Solid-Solution Alloy to Boost Electrosynthesis of Ammonia from Nitrate
Multivariate covalent organic frameworks with tailored electrostatic potential promote nitrate electroreduction to ammonia in acid
Identifying Upper d-Band Edge as Activity Descriptor for Ammonia Oxidation on PtCo Alloys in Low-Temperature Direct Ammonia Fuel Cells
Facilitating Anodic Ammonia Oxidation over Trace Cobalt-Substituted Solid Solution of Platinum to Boost Direct Ammonia Fuel Cell up to 853.75 mW cm<sup>–2</sup>
Electrochemical Ammonia Oxidation Reaction on Nickel‐Based Non‐Noble Metal Electrocatalysts: From Mechanistic Understanding to Practical Applications
Platinum-based electrocatalysts for efficient ammonia oxidation in low-temperature direct ammonia fuel cells: Insight into intrinsic mechanisms, activity regulation, and challenges
Comprehensive understanding of the thriving electrocatalytic nitrate/nitrite reduction to ammonia under ambient conditions
Donor‐Site‐Acceptor Covalent Organic Frameworks Enable Spontaneous Nitrogen Dissociation for Boosted Photoelectrochemical Ammonia Synthesis
Molecular Dynamics Simulations for Electrocatalytic CO<sub>2</sub> Reduction: Bridging Macroscopic Experimental Observations and Microscopic Explanatory Mechanisms
Orderly Coating of Bilayer Polymer to Tailor Microenvironment for Efficient C−N Coupling Toward Highly Selective Urea Electrosynthesis
Achieving green synthesis of high‐value‐added chemicals via N‐integrated CO <sub>2</sub> co‐reduction: a review
Built-In Positive Valence Space Shifting the Chemical Equilibrium Forward for Nitrate Reduction to Ammonia
Reshaping hydrogen bond network in aqueous-aprotic hybrid electrolyte to achieve highly selective ambient ammonia synthesis
Orderly Coating of Bilayer Polymer to Tailor Microenvironment for Efficient C−N Coupling Toward Highly Selective Urea Electrosynthesis
Polycation-functionalized interface enable in situ capturing of CO2 and filtering of proton for efficient C-N coupling toward highly selective urea electrosynthesis
Triggering Heteroatom Ensemble Effect over RuFe Alloy to Promote Nitrogen Chemisorption for Efficient Ammonia Electrosynthesis at Ambient Conditions
Rare-Earth Lanthanum-Evoked Amorphization and Optimization to Boost Ambient Nitrogen Fixation over Single-Atom Catalysts
Deciphering Electrolyte Selection for Electrochemical Reduction of Carbon Dioxide and Nitrogen to High‐Value‐Added Chemicals
Awakening (220) as One More Active Facet of PtMo Alloy via Single‐Atom Doping to Boost Ammonia Electrooxidation in Direct Ammonia Fuel Cell
Molecular Imprinting Technology Enables Proactive Capture of Nitrogen for Boosted Ammonia Synthesis under Ambient Conditions
High‐entropy alloys for accessing hydrogen economy via sustainable production of fuels and direct application in fuel cells
Deciphering engineering principle of three-phase interface for advanced gas-involved electrochemical reactions
Eliminating Concentration Polarization with Cationic Covalent Organic Polymer to Promote Effective Overpotential of Nitrogen Fixation
Comprehensive understanding and rational regulation of microenvironment for gas‐involving electrochemical reactions
Recent Advances in Electrocatalysts for Sustainable Electrosynthesis of Ammonia and Urea from Ambient Nitrite Reduction and C–N Coupling
Li+-ion bound crown ether functionalization enables dual promotion of dynamics and thermodynamics for ambient ammonia synthesis
Asymmetric electrode design with built‐in nitrogen transfer channel achieving maximized three‐phase reaction region for electrochemical ammonia synthesis
Eliminating Concentration Polarization with Cationic Covalent Organic Polymer to Promote Effective Overpotential of Nitrogen Fixation
Covalent organic frameworks towards photocatalytic applications: Design principles, achievements, and opportunities
Turning Waste into Wealth: Sustainable Production of High-Value-Added Chemicals from Catalytic Coupling of Carbon Dioxide and Nitrogenous Small Molecules