Area of research
Electrical and Electronic Engineering · Electronic, Optical and Magnetic Materials
Research interest
Research interests include Materials science, Supercapacitor, Electrocatalyst, Hydroxide, Electrode, and Oxygen evolution.
Cobalt phosphide nanoarrays on a borate-modified nickel foam substrate as an efficient dual-electrocatalyst for overall water splitting
Ni-Co layered double-hydroxide arrays on stainless steel substrate: Interfacial hydroxide layer enhanced electrocatalyst with high stability for oxygen evolution reaction in alkaline media
CoNi<sub>2</sub>S<sub>4</sub> Electrode with High Mass‐Loading for High‐Energy‐Density Supercapacitor: Role of S‐Containing Anions Exchange
Quasi‐Parallel NiFe Layered Double Hydroxide Nanosheet Arrays for Large‐Current‐Density Oxygen Evolution Electrocatalysis
Quasi-parallel nickel cobalt phosphide nanosheet arrays as highly efficient electrocatalyst for hydrogen evolution and overall water splitting at large current densities
In situ hybridization of polyaniline on Mn oxide for high-performance supercapacitor
Graded holey Nickel Cobalt layered double hydroxide nanosheet array electrode with high mass loading for high-energy-density all-solid-state supercapacitors
Anion Exchange of Ni–Co Layered Double Hydroxide (LDH) Nanoarrays for a High‐Capacitance Supercapacitor Electrode: A Comparison of Alkali Anion Exchange and Sulfuration
Cobalt carbonate hydroxide mesostructure with high surface area for enhanced electrocatalytic oxygen evolution
Surface pattern of Ni Co hydroxide nanoplate arrays electrocatalysts for the oxygen evolution reaction
Novel synthesis and shape-dependent catalytic performance of Cu–Mn oxides for CO oxidation
Alkali conversion of Ni-Co nanoarrays on carbon cloth for a high-capacity supercapacitor electrode
In situ fabrication of Ni–Co (oxy)hydroxide nanowire-supported nanoflake arrays and their application in supercapacitors
New insights into graphite paper as electrocatalytic substrate for oxygen evolution reaction
Enhancement effect of Na ions on capacitive behavior of amorphous MnO2
Enhanced Supercapacitor Performance of Mn<sub>3</sub>O<sub>4</sub> Nanocrystals by Doping Transition-Metal Ions