Area of research
Renewable Energy, Sustainability and the Environment · Electrical and Electronic Engineering
Research interest
Research focused on Catalysis and Heteronuclear molecule, with related work in Electrocatalyst, Phthalocyanine, Graphene. Notable publications include 'DFT-driven design of efficient dual-atom electrocatalysts for lithium-sulfur batteries: Fe dimers supported on phthalocyanine', 'Efficient nitrogen-doped graphene supported heteronuclear diatomic electrocatalyst for nitrogen reduction reaction: D-band center assisted rapid screening', and 'Superhydrophilic S‐NiFe LDH by Room Temperature Synthesis for Enhanced Alkaline Water/Seawater Oxidation at Large Current Densities'.
DFT-driven design of efficient dual-atom electrocatalysts for lithium-sulfur batteries: Fe dimers supported on phthalocyanine
Superhydrophilic S‐NiFe LDH by Room Temperature Synthesis for Enhanced Alkaline Water/Seawater Oxidation at Large Current Densities
d-s/p orbital hybridization-driven synergy in heteronuclear dual-atom catalysts on CN/C2N for high-efficiency lithium-sulfur batteries
Vacancy-engineered Janus MoSSe for polysulfide anchoring and catalytic conversion in lithium-sulfur batteries: A DFT study
Engineering In2O3 catalysts using dielectric barrier discharge plasma for selective CO2 conversion to CO
Efficient nitrogen-doped graphene supported heteronuclear diatomic electrocatalyst for nitrogen reduction reaction: D-band center assisted rapid screening
Applications of metal nanoclusters supported on the two-dimensional material graphene in electrocatalytic carbon dioxide reduction
Theoretical Design and Study of a Single-Atom Catalyst in Lithium–Sulfur Batteries: Edge-Type FeN<sub>4</sub> Active Site Electron Density Redistribution Driven by Heteroatoms