Area of research
Mechanical Engineering · Renewable Energy, Sustainability and the Environment
Research interest
Research focused on Anode and Nanodot, with related work in Kinetics, Carbon fibers, Hydrogen storage. Notable publications include 'Thermodynamics and kinetics of hydriding and dehydriding reactions in Mg-based hydrogen storage materials', 'Kinetics and mechanism of hydrogen reduction of MoO3 to MoO2', and 'Adjustable Dimensionality of Microaggregates of Silicon in Hollow Carbon Nanospheres: An Efficient Pathway for High-Performance Lithium-Ion Batteries'.
Tuning NO2 selectivity in MoSe2 sensors via metal modification: Fermi-level electronic state control
Metal-modified C<sub>3</sub>N<sub>1</sub> monolayer sensors for battery instability monitoring
Metal-enhanced carbon-nitrogen material for selective detection of hazardous gases: Insights from interface electronic states
A novel high-entropy MXene Ti1.1V1.2Cr0.8Nb1.0Mo0.9C4Tx for high-performance supercapacitor
SnCo Nanoparticles Loaded in Hollow Carbon Spheres Interlinked by N-Doped Carbon Fibers for High-Performance Sodium-Ion Batteries
Bean Pod‐Like SbSn/N‐Doped Carbon Fibers toward a Binder Free, Free‐Standing, and High‐Performance Anode for Sodium‐Ion Batteries
Thermodynamics and kinetics of hydriding and dehydriding reactions in Mg-based hydrogen storage materials
Adjustable Dimensionality of Microaggregates of Silicon in Hollow Carbon Nanospheres: An Efficient Pathway for High-Performance Lithium-Ion Batteries
Bimetallic alloy SbSn nanodots filled in electrospun N-doped carbon fibers for high performance Na-ion battery anode
Double-shelled hollow carbon nanospheres as enclosed electrochemical reactors to enhance the lithium storage performance of silicon nanodots
Kinetics and mechanism of hydrogen reduction of MoO3 to MoO2