Area of research
Electrical and Electronic Engineering · Renewable Energy, Sustainability and the Environment
Research interest
Research interests include Materials science, Catalysis, Chemical engineering, Battery (electricity), Electrolyte, and Electrochemistry.
Defect-Rich Copper Electrocatalyst with Enhanced Acetylene Adsorption for Highly-Selective Ethylene Production at Industrial Current Densities
Achieving High OER Performance by Tuning the Co/Mn Content in Prussian Blue Analogues
Self‐Reconstruction Induced Electronic Metal‐Support Interaction for Modulated Cu<sup>+</sup> Sites on TiO<sub>2</sub> Nanofibers in Electrocatalytic Nitrate Conversion
Lattice Distortion and H‐passivation in Pure Carbon Electrocatalysts for Efficient and Stable Two‐electron Oxygen Reduction to H<sub>2</sub>O<sub>2</sub>
Novel porous thermosensitive gel electrolytes for wearable thermo-electrochemical cells
Fast Activation of Graphene with a Highly Distorted Surface and Its Role in Improved Aqueous Electrochemical Capacitors
Boosting Na-O2 battery performance by regulating the morphology of NaO2
Unzipping chemical bonds of non-layered bulk structures to form ultrathin nanocrystals
Figshare 2021cited by 12position: middle
Highly efficient Co3O4/Co@NCs bifunctional oxygen electrocatalysts for long life rechargeable Zn-air batteries
Research Progress and Future Perspectives on Rechargeable Na‐O<sub>2</sub> and Na‐CO<sub>2</sub> Batteries
Heterostructured Mo2C–MoO2 as highly efficient catalyst for rechargeable Li–O2 battery
A conductive polymer derived N-doped carbon nanofiber supported Li2S coating layer for Li–S batteries with high mass loading
Metallic state two-dimensional holey-structured Co<sub>3</sub>FeN nanosheets as stable and bifunctional electrocatalysts for zinc–air batteries
Highly reversible Li-O2 battery induced by modulating local electronic structure via synergistic interfacial interaction between ruthenium nanoparticles and hierarchically porous carbon