Area of research
Electrical and Electronic Engineering · Electronic, Optical and Magnetic Materials
Research interest
Research interests include Supercapacitor Materials and Fabrication, Advancements in Battery Materials, Advanced Photocatalysis Techniques, and Advanced Battery Materials and Technologies.
Towards Reliable Healthcare Imaging: A Multifaceted Approach in Class Imbalance Handling for Medical Image Segmentation
Chemically embedding Co nanospheres in N-doped carbon nanosheets for enhanced zinc-air batteries
Deactivation of CeO2-TiO2 catalyst by K2SO4 for NH3-SCR: An experimental and DFT study
Zipping Up NiFe(OH)<sub><i>x</i></sub>-Encapsulated Hematite To Achieve an Ultralow Turn-On Potential for Water Oxidation
A silver wire aerogel promotes hydrogen peroxide reduction for fuel cells and electrochemical sensors
Engineering of Mesoscale Pores in Balancing Mass Loading and Rate Capability of Hematite Films for Electrochemical Capacitors
Ultrathin flexible reduced graphene oxide/cellulose nanofiber composite films with strongly anisotropic thermal conductivity and efficient electromagnetic interference shielding
Multiscale Pore Network Boosts Capacitance of Carbon Electrodes for Ultrafast Charging
Morphology and Doping Engineering of Sn-Doped Hematite Nanowire Photoanodes
Ostwald Ripening Improves Rate Capability of High Mass Loading Manganese Oxide for Supercapacitors
An Electrochemical Capacitor with Applicable Energy Density of 7.4 Wh/kg at Average Power Density of 3000 W/kg
Photohole Induced Corrosion of Titanium Dioxide: Mechanism and Solutions
Polyaniline and Polypyrrole Pseudocapacitor Electrodes with Excellent Cycling Stability
A New Benchmark Capacitance for Supercapacitor Anodes by Mixed‐Valence Sulfur‐Doped V<sub>6</sub>O<sub>13−<i>x</i></sub>
Investigation of hematite nanorod–nanoflake morphological transformation and the application of ultrathin nanoflakes for electrochemical devices
High Energy Density Asymmetric Quasi-Solid-State Supercapacitor Based on Porous Vanadium Nitride Nanowire Anode
Improving the Cycling Stability of Metal–Nitride Supercapacitor Electrodes with a Thin Carbon Shell
Organocatalytic asymmetric transformations of modified Morita–Baylis–Hillman adducts