Area of research
Renewable Energy, Sustainability and the Environment · Electrical and Electronic Engineering
Research interest
Research focused on Photocatalysis and Energy transformation, with related work in Nanotechnology, Catalysis, Chemical engineering. Notable publications include 'Complementary Weaknesses: A Win‐Win Approach for rGO/CdS to Improve the Energy Conversion Performance of Integrated Photorechargeable Li−S Batteries', 'Dual-sources directed construction of N-doped carbon nanotube arrays as superior Self-supported bifunctional air electrodes for Rechargeable/Flexible Zinc-air batteries', and 'Unravelling the Tip Effect of Oxygen Catalysis in Integrated Cathode for High-Performance Flexible/Wearable Zn–Air Batteries'.
Complementary Weaknesses: A Win‐Win Approach for rGO/CdS to Improve the Energy Conversion Performance of Integrated Photorechargeable Li−S Batteries
Unravelling the Tip Effect of Oxygen Catalysis in Integrated Cathode for High-Performance Flexible/Wearable Zn–Air Batteries
Biphasic Nanoalloys‐Based Trifunctional Monolith for High‐Performance Flexible Zn‐Air Batteries and Self‐Driven Water Splitting
Augmenting energy storage in photorechargeable supercapacitors via Ni2+/Ni3+ interconversion mechanism within TiO2/CdS/Ni2(OH)2CO3 composite photoelectrode
The photo-decomposition and self-restructuring dynamic equilibrium mechanism of Cu2(OH)2CO3 for stable photocatalytic CO2 reduction
Complementary Weaknesses: A Win‐Win Approach for rGO/CdS to Improve the Energy Conversion Performance of Integrated Photorechargeable Li−S Batteries
Synergistic Photocatalytic CO<sub>2</sub> Reduction and Methanol Oxidation via Self-Photogenerated Oxygen Vacancy-Rich TiO<sub>2</sub> Nanostructures
Dual-sources directed construction of N-doped carbon nanotube arrays as superior Self-supported bifunctional air electrodes for Rechargeable/Flexible Zinc-air batteries