Area of research
Electronic, Optical and Magnetic Materials · Renewable Energy, Sustainability and the Environment
Research interest
Research interests include Materials science, Supercapacitor, Graphene, Electrocatalyst, Catalysis, and Capacitance.
Application of Lignin-Derived Carbon Materials in Adsorption and Separation
Promoting CO<sub>2</sub>Dynamic Activation via Micro‐Engineering Technology for Enhancing Electrochemical CO<sub>2</sub>Reduction
Tuning the Metal Electronic Structure of Anchored Cobalt Phthalocyanine via Dual‐Regulator for Efficient CO<sub>2</sub> Electroreduction and Zn–CO<sub>2</sub> Batteries
Mediating heterogenized nickel phthalocyanine into isolated Ni-N3 moiety for improving activity and stability of electrocatalytic CO2 reduction
Synergistic catalytic enhancement of metal-organic framework derived nanoarchitectures decorated on graphene as a high-efficiency bifunctional electrocatalyst for methanol oxidation and oxygen reduction
Organic-inorganic TCPP/BiOCl hybrids with accelerated interfacial charge separation for boosted photocatalytic performance
Platinum quantum dots enhance electrocatalytic activity of bamboo-like nitrogen doped carbon nanotubes embedding Co-MnO nanoparticles for methanol/ethanol oxidation
High-performance asymmetric supercapacitor based on Co–Mo–S/ Co–Mo-LDH nanosheets grown on Co-MOF square tetrahedral structure
A super hybrid supercapacitor with high energy density based on the construction of CoMoO4/MoO2 decorated 3D sulfur-doped graphene and porous lotus leaves carbon
Synergistic CoFe-Fe5C2 nanocrystal wrapped in N-doped carbon/carbon nanotubes as enhanced and CO-resistant electrocatalyst for methanol oxidation
MoO2 coated few layers of MoS2 and FeS2 nanoflower decorated S-doped graphene interoverlapped network for high-energy asymmetric supercapacitor
Ultrathin porous Mn(PO3)2 nanosheets and MoO2 nanocrystal arrays on N, P-dual-doped graphene for high-energy asymmetric supercapacitors
Controllable synthesis of CoNb2O6 nanoparticles on multifunctional sulfur and phosphorus dual-doped graphene as advanced electrodes for hybrid supercapacitors