Area of research
Materials Chemistry · Catalysis
Research interest
Research interests include Hydrogen storage, Materials science, Hydrogen, Dehydrogenation, Catalysis, and Alloy.
MXene-supported V2O5 nanocatalysts: Boosting hydrogen storage efficiency in MgH2 through synergistic catalysis
Layered MoS2-supported and metallic Ni-doped MgH2 towards enhanced hydrogen storage kinetics and cycling stability
Influence of a three-dimensional honeycomb Fe/N-MXene catalyst on the hydrogen storage performance of MgH2
Boosting MgH2 hydrogen storage with hydrothermally synthesized FL-V2C-MnO2: Achieving superior performance at low temperatures
NbP-NbO Heterostructures with Engineered Built-In Electric Fields for Accelerated Lithium Polysulfide Conversion
Dual-phase (AlMgCoNiCuZn)O high-entropy oxide embedded in graphite nanosheets with superior lithium storage capability
Synergistic 3D network eengineering and surface terminal regulation in MXene/graphene aerogels with ultrahigh volumetric capacitance and rate-capability for supercapacitors
A DFT study on the synergistic catalytic effect of double transition metals doping on hydrogenation of Mg17Al12
Hybrid of bulk NbC and layered Nb4C3 MXene for tailoring the hydrogen storage kinetics and reversibility of Li–Mg–B–H composite: An experimental and theoretical study
Fin structure optimization for improving heat transfer efficiency and hydrogen absorption rate of metal hydride hydrogen storage tank
Fabrication of V2O3-TiO2-rGO ternary heterojunction composite to enhance the hydrogen storage performance of MgH2
<b>Improvement in hydrogen storage performance of MgH</b> <sub> <b>2</b> </sub> <b>by vanadium doped with ZIF‐8 derived a single‐atom catalyst</b> V–N–C
MXenes as catalysts for lightweight hydrogen storage materials: A review
Potassium Ion–Assisted Self–Assembled MXene-K-CNT Composite as High–Quality Sulfur–Loaded Hosts for Lithium–Sulfur Batteries
Investigation on hydrogenation performance of Mg17Al12 by adding Y
Exfoliation of compact layered Ti2VAlC2 MAX to open layered Ti2VC2 MXene towards enhancing the hydrogen storage properties of MgH2
Ti <sub>3</sub> AlCN MAX for tailoring MgH <sub>2</sub> hydrogen storage material: from performance to mechanism
Effect of MOF-derived carbon–nitrogen nanosheets co-doped with nickel and titanium dioxide nanoparticles on hydrogen storage performance of MgH2
Improved hydrogen storage properties of MgH2 by Mxene (Ti3C2) supported MnO2
Layered niobium carbide enabling excellent kinetics and cycling stability of Li‐Mg‐B‐H hydrogen storage material
Effect of Ti0.9Zr0.1Mn1.5V0.3 alloy catalyst on hydrogen storage kinetics and cycling stability of magnesium hydride
Application of nitrogen-doped graphene-supported titanium monoxide as a highly active catalytic precursor to improve the hydrogen storage properties of MgH2
In situ incorporation of highly dispersed nickel and vanadium trioxide nanoparticles in nanoporous carbon for the hydrogen storage performance enhancement of magnesium hydride
Regulation of the integrated hydrogen storage properties of magnesium hydride using 3D self-assembled amorphous carbon-embedded porous niobium pentoxide
Effects of transition metal Ti and its compounds on hydrogen adsorption performance of Mg17Al12
Combinations of V<sub>2</sub>C and Ti<sub>3</sub>C<sub>2</sub> MXenes for Boosting the Hydrogen Storage Performances of MgH<sub>2</sub>
Two-dimensional vanadium carbide for simultaneously tailoring the hydrogen sorption thermodynamics and kinetics of magnesium hydride
Roles of in situ-formed NbN and Nb2O5 from N-doped Nb2C MXene in regulating the re/hydrogenation and cycling performance of magnesium hydride
Facile synthesis of a Ni3S2@C composite using cation exchange resin as an efficient catalyst to improve the kinetic properties of MgH2
Facile and low-cost synthesis of carbon-supported manganese monoxide nanocomposites and evaluation of their superior catalytic effect toward magnesium hydride