Area of research
Electronic, Optical and Magnetic Materials · Atomic and Molecular Physics, and Optics
Research interest
Research interests include Materials science, Hydrogen, Hydrogen storage, Dehydrogenation, Coercivity, and Desorption.
Selectivity‐Enhanced Near‐Infrared Photocatalytic Dehydrogenation and C─N Coupling via Lanthanide Nanocrystal‐Mediated Photosensitization
Temperature-dependent evolution of REFe2 phase and correlated coercivity responses in post-sinter annealed Nd–Ce–Fe–B magnets
Comprehensive hydrogen storage performance of Li–Mg–N–H hydrogen storage system co‐doped with nano LaNi <sub>5</sub> and SWCNTs: experimental and theoretical modification study
An ultra-dilute Mg(TFSI)2 based electrolyte enabling reversible Mg metal anode
Experimental and theoretical study on high hydrogen storage performance of Mg(NH2)2–2LiH composite system driven by nano CeO2 oxygen vacancies
CeB6 nanoparticles modified Mg(NH2)2-2LiH with superior (de)hydrogenation kinetics and reversible hydrogen storage properties: An experimental and theoretical study
Enhancement effect of Ce hydride on hydrogen storage performance of Mg(NH2)2-2LiH
Merits of Pr80Ga20 grain boundary diffusion process towards high coercivity‒remanence synergy of Nd‒La‒Ce‒Fe‒B sintered magnet
Latticed‐Confined Conversion Chemistry of Battery Electrode
Enhanced hydrogen desorption/absorption properties of magnesium hydride with CeF3@Gn
CNTs decorated with CoFeB as a dopant to remarkably improve the dehydrogenation/rehydrogenation performance and cyclic stability of MgH2
MoSe2 hollow nanospheres decorated with FeNi3 nanoparticles for enhancing the hydrogen storage properties of MgH2
The Dehydrogenation Mechanism and Cycling Property of MgH <sub>2</sub> Modified by CoB/CNTs Addition
Ever‐Increasing Pseudocapacitance in RGO–MnO–RGO Sandwich Nanostructures for Ultrahigh‐Rate Lithium Storage
Effects of alignment on the magnetic and mechanical properties of sintered Nd–Fe–B magnets