Area of research
Mechanical Engineering · Ceramics and Composites
Research interest
Research interests include Aluminum Alloys Composites Properties, Advanced ceramic materials synthesis, Electrocatalysts for Energy Conversion, and Advanced materials and composites.
Stepwise Acceleration of Water Dissociation and Hydrogen Spillover for Enhanced Overall Alkaline Hydrogen Evolution
"DIVE" into hydrogen storage materials discovery with AI agents.
Materials Databases: Foundations of Modern Digital Materials
Digital materials ecosystem: from databases to AI agents for autonomous discovery.
Digital Catalysis Platform (DigCat): A Gateway to Big Data and AI-Powered Innovations in Catalysis
Spin effect regulation as a design principle for M-N-C catalysts for oxygen electrocatalysis.
Catalysis AI Agent Guides Discovering the Universal Design Principle of Cu-Based Single-Atom Alloy Catalysts for CO<sub>2</sub> Electroreduction.
Accelerating Catalyst Materials Discovery With Large Artificial Intelligence Models.
Coordination-Dependent Oxygen Reduction Reaction Activity of Single Atom Co-N<i>x</i>-C Electrocatalysts.
Digital Catalysis Platform (DigCat): A Gateway to Big Data and AI-Powered Innovations in Catalysis
Accelerating Catalyst Materials Discovery With Large Artificial Intelligence Models
Strategically Advancing Semiconducting Phthalocyanines as High-Performance Electrocatalysts for Electrochemical CO
<sub>2</sub>
Reduction
StableOx-Cat agent: an AI agent for exploring stable metal oxide electrocatalysts
DigMethpy: an AI-empowered digital catalysis platform for methane pyrolysis molten catalyst design
Catalysis AI Agent Guides Discovering the Universal Design Principle of Cu‐Based Single‐Atom Alloy Catalysts for CO
<sub>2</sub>
Electroreduction
Why Do Weak-Binding M–N–C Single-Atom Catalysts Possess Anomalously High Oxygen Reduction Activity?
The Key Steps and Distinct Performance Trends of Pyrrolic vs Pyridinic M–N–C Catalysts in Electrocatalytic Nitrate Reduction
Electrochemical CO<sub>2</sub> Reduction on SnO: Insights into C<sub>1</sub> Product Dynamic Distribution and Reaction Mechanisms
Electrochemical CO<sub>2</sub> Reduction on SnO: Insights into C<sub>1</sub> Product Dynamic Distribution and Reaction Mechanisms
Closed-Loop Framework for Discovering Stable and Low-Cost Bifunctional Metal Oxide Catalysts for Efficient Electrocatalytic Water Splitting in Acid
A pH-dependent microkinetic modeling guided synthesis of porous dual-atom catalysts for efficient oxygen reduction in Zn–air batteries
High-Density W Single Atoms in Two-Dimensional Spinel Oxide Break the Structural Integrity for Enhanced Oxygen Evolution Catalysis
Hydrogen Binding Energy Is Insufficient for Describing Hydrogen Evolution on Single‐Atom Catalysts
Why Do Weak-Binding M-N-C Single-Atom Catalysts Possess Anomalously High Oxygen Reduction Activity?
Mesoporous Single-Crystalline Particles as Robust and Efficient Acidic Oxygen Evolution Catalysts.
Divergent Activity Shifts of Tin-Based Catalysts for Electrochemical CO<sub>2</sub> Reduction: pH-Dependent Behavior of Single-Atom Versus Polyatomic Structures.
Data-Driven Accelerated Discovery Coupled with Precise Synthesis of Single-Atom Catalysts for Robust and Efficient Water Purification.
Data-Driven Strategies for Designing Multicomponent Molten Catalysts to Accelerate the Industrialization of Methane Pyrolysis
Hydrogen Binding Energy Is Insufficient for Describing Hydrogen Evolution on Single‐Atom Catalysts
Decoding pH-dependent electrocatalysis through electric field models and microkinetic volcanoes