Area of research
Nuclear and High Energy Physics · Materials Chemistry
Research interest
Research interests include Materials science, Anode, Graphene, Porosity, Supercapacitor, and Lithium (medication).
Machine learning-assisted N-doped carbon dots for sensitive Pd2+ detection and high-performance LED applications in plant cultivation
Engineered Probiotic‐Powered Micro‐Rod Robot Bomb for Thrombus‐Penetrating Explosion
Maternal circadian rhythm disruption affects neonatal inflammation via metabolic reprograming of myeloid cells
Extreme pressure and anti-wear properties of polycarboxylate superplasticizer modified 3D porous graphene/SiO2 as water-based lubricant additives
The influence of mineral inclusion on the effective strength of rock-like geomaterials
The mechanism of boiling heat transfer of polycarboxylate superplasticizer modified stereotaxically constructed graphene water-based nanofluid: Experiment and molecular dynamics simulation
TfOH-Catalyzed Regioselective S–H Insertion of Cyclic Thioamide Derivatives with Diazo Compounds at Room Temperature
Enhancement mechanism of epoxy resin by polyacrylic acid-modified 3D porous graphene: A microscopic and molecular dynamics perspective
Particle-in-cell simulations on parametric instability of the lower hybrid wave
Zephyranthes-like Co2NiSe4 arrays grown on 3D porous carbon frame-work as electrodes for advanced supercapacitors and sodium-ion batteries
High N-doped hierarchical porous carbon networks with expanded interlayers for efficient sodium storage
Self-supporting N, P doped Si/CNTs/CNFs composites with fiber network for high-performance lithium-ion batteries
Integrated modeling of CFETR hybrid scenario plasmas
A Promising Hard Carbon−Soft Carbon Composite Anode with Boosting Sodium Storage Performance
Fabrication of GeO2 microspheres /hierarchical porous N-doped carbon with superior cyclic stability for Li-ion batteries
NiAl Layered Double Hydroxide Flowers with Ultrathin Structure Grown on 3D Graphene for High‐Performance Supercapacitors
Development of high poloidal beta, steady-state scenario with ITER-like tungsten divertor on EAST
Germanium-based complex derived porous GeO2 nanoparticles for building high performance Li-ion batteries