Area of research
Electronic, Optical and Magnetic Materials · Electrical and Electronic Engineering
Research interest
Research focused on Supercapacitor and Microsphere, with related work in Trapping, Graphene, Capacitance. Notable publications include 'A General “Surface‐Locking” Approach toward Fast Assembly and Processing of Large‐Sized, Ordered, Mesoporous Carbon Microspheres', 'Light trapping structures and plasmons synergistically enhance the photovoltaic performance of full-spectrum solar cells', and 'Hierarchical Co3S4/CoS/MoS2 leaf-like nanoflakes array derived from Co-ZIF-L as an advanced anode for flexible supercapacitor'.
Construction of δ-MnO2/Mn2O3 flower sphere composite with two-dimensional hierarchical nanosheets as supercapacitor electrode with enhanced performance
Embedding partial sulfurization of iron–cobalt oxide nanoparticles into carbon nanofibers as an efficient electrode for the advanced asymmetric supercapacitor
Hierarchical mesoporous selenium@bimetallic selenide quadrilateral nanosheet arrays for advanced flexible asymmetric supercapacitors
Nickel carbonate Hydroxide-based Core-Triple-Shelled nanofibers with ultrahigh specific capacity for flexible hybrid supercapacitors
Hierarchical Co3S4/CoS/MoS2 leaf-like nanoflakes array derived from Co-ZIF-L as an advanced anode for flexible supercapacitor
Heterogeneous cobalt polysulfide leaf-like array/carbon nanofiber composites derived from zeolite imidazole framework for advanced asymmetric supercapacitors
Ti<sub>3</sub>C<sub>2</sub>/ϵ-Ga<sub>2</sub>O<sub>3</sub>Schottky Self-Powered Solar-Blind Photodetector With Robust Responsivity
Boosting the energy density of iron-cobalt oxide based hybrid supercapacitors by redox-additive electrolytes
Light trapping structures and plasmons synergistically enhance the photovoltaic performance of full-spectrum solar cells
A General “Surface‐Locking” Approach toward Fast Assembly and Processing of Large‐Sized, Ordered, Mesoporous Carbon Microspheres