Area of research
Renewable Energy, Sustainability and the Environment · Electrical and Electronic Engineering
Research interest
Research interests include Advanced Photocatalysis Techniques, Gas Sensing Nanomaterials and Sensors, Electrocatalysts for Energy Conversion, and Supercapacitor Materials and Fabrication.
Lattice Strain‐Modulated Trifunctional CoMoO <sub>4</sub> Polymorph‐Based Electrodes for Asymmetric Supercapacitors and Self‐Powered Water Splitting
Lattice strain engineering via electrochemical treatment boosts solar water oxidation of BiVO4 through accelerated intermediate conversion
Metal–organic framework-derived nano-CoS-enhanced photoelectrochemical water splitting performance of the BiVO<sub>4</sub> photoanode
Functionalized 3D Mo<sub>2</sub>N Current Collectors Drive Multi‐Phase Ni‐based Synergy and Mitigate Surface Reconstruction for Enhanced Oxygen Evolution Catalysis
Lattice stress memory in CoNiP@Cu3P core-shell nanoarchitectures enabling self-adaptive ultra-efficient hydrogen evolution
Modulating built-in electric field via Bi-VO4-Fe interfacial bridges to enhance charge separation for efficient photoelectrochemical water splitting
High-performance multidimensional-structured N-doped nickel modulated Mo2N/FeOxNy bifunctional electrocatalysts for efficient alkaline seawater splitting
Tailoring Carrier Dynamics of BiVO<sub>4</sub> Photoanode via Dual Incorporation of Au and Co(OH)<sub>x</sub> Cooperative Modification for Photoelectrochemical Water Splitting
Systematic Constructing FeOCl/BiVO<sub>4</sub> Hetero‐Interfacial Hybrid Photoanodes for Efficient Photoelectrochemical Water Splitting
Thermal strain engineering in cobalt-coordinated Mo2N for efficient ampere-level current density alkaline fresh/seawater hydrogen evolution electrocatalysis
Combinational effect of NiFeOx/Tb(OH)x as hole extractor for enhanced charges separation and stability of BiVO4 photoanode for solar water splitting
Polypyrrole as photo-thermal-assisted modifier for BiVO4 photoanode enables high-performance photoelectrochemical water splitting
Charge Relays via Dual Carbon‐Actions on Nanostructured BiVO<sub>4</sub> for High Performance Photoelectrochemical Water Splitting
Oxygen vacancy–based metal oxides photoanodes in photoelectrochemical water splitting
Deciphering the lithium storage chemistry in flexible carbon fiber‐based self‐supportive electrodes
Review on BiVO<sub>4</sub>-Based Photoanodes for Photoelectrochemical Water Oxidation: The Main Influencing Factors
Actual pseudocapacity for Li ion storage in tunable core‐shell electrode architectures
Amorphous type FeOOH modified defective BiVO4 photoanodes for photoelectrochemical water oxidation
Enhanced BiVO<sub>4</sub> Photoanode Photoelectrochemical Performance via Borate Treatment and a NiFeOx Cocatalyst
Sub‐Thick Electrodes with Enhanced Transport Kinetics via In Situ Epitaxial Heterogeneous Interfaces for High Areal‐Capacity Lithium Ion Batteries
Nanostructured transition metal compounds coated 3D porous core-shell carbon fiber as monolith water splitting electrocatalysts: A general strategy
In Situ Grown Co‐Based Interstitial Compounds: Non‐3d Metal and Non‐Metal Dual Modulation Boosts Alkaline and Acidic Hydrogen Electrocatalysis
Unveiling the promotion of accelerated water dissociation kinetics on the hydrogen evolution catalysis of NiMoO4 nanorods
Non-oxygen anion-regulated in situ cobalt based heterojunctions for active alkaline hydrogen evolution catalysis
Tailoring the cationic and anionic sites of LaFeO<sub>3</sub>-based perovskite generates multiple vacancies for efficient water oxidation
Advanced Tri-Layer Carbon Matrices with π–π Stacking Interaction for Binder-Free Lithium-Ion Storage
Constructing Fe-MOF-Derived Z-Scheme Photocatalysts with Enhanced Charge Transport: Nanointerface and Carbon Sheath Synergistic Effect
Enhanced metallicity boosts hydrogen evolution capability of dual-bimetallic Ni–Fe nitride nanoparticles
Engineering the Band-Edge of Fe<sub>2</sub>O<sub>3</sub>/ZnO Nanoplates via Separate Dual Cation Incorporation for Efficient Photocatalytic Performance
An overview of advanced methods for the characterization of oxygen vacancies in materials