Area of research
Condensed Matter Physics · Electronic, Optical and Magnetic Materials
Research interest
Research interests include Materials science, Superconductivity, Sintering, Boron, Microstructure, and Doping.
Cooperatively controlling γ′ phase and M23C6 of a polycrystalline Ni3Al-based superalloy: Microstructure and creep resistance
Enhanced superconductivity induced by several-unit-cells diffusion in an FeTe/FeSe bilayer heterostructure
Evaluation of a solid nitrogen impregnated MgB <sub>2</sub> racetrack coil
Inversion Calculation of the Interatomic Potentials for Ni<sub>0.75</sub>Al<i><sub>x</sub></i>Mo<sub>0.25–<i>x</i></sub> Alloy Employing Microscopic Phase-Field Model
Synthesis of nanosized composite powders via a wet chemical process for sintering high performance W-Y2O3 alloy
Microstructure Refinement in W-Y2O3 Alloy Fabricated by Wet Chemical Method with Surfactant Addition and Subsequent Spark Plasma Sintering
The Interface Structure of FeSe Thin Film on CaF<sub>2</sub> Substrate and its Influence on the Superconducting Performance
Enhancement of grain connectivity and critical current density in the ex-situ sintered MgB2 superconductors by doping minor Cu
The isotope effect of boron on the carbon doping and critical current density of Mg<sup>11</sup>B<sub>2</sub>superconductors
Doping-Induced Isotopic Mg11B2 Bulk Superconductor for Fusion Application
Graphene-like holey Co3O4 nanosheets as a highly efficient catalyst for oxygen evolution reaction
Evaluation of persistent-mode operation in a superconducting MgB<sub>2</sub>coil in solid nitrogen
High performance MgB<sub>2</sub> superconducting wires fabricated by improved internal Mg diffusion process at a low temperature
Tuning Superconductivity in FeSe Thin Films via Magnesium Doping
The kinetics mechanism of MgB2 layer formation within MgB2 superconducting wire fabricated using improved internal Mg diffusion process
Superior transport J c obtained in in-situ MgB 2 wires by tailoring the starting materials and using a combined cold high pressure densification and hot isostatic pressure treatment
Significant enhancement of superconducting properties in the FeSe 0.5 Te 0.5 bulks by minor Sn addition
Improvement in the transport critical current density and microstructure of isotopic Mg11B2 monofilament wires by optimizing the sintering temperature
Superior critical current density obtained in MgB 2 bulks via employing carbon-coated boron and minor Cu addition
Improved Superconducting properties in the Mg11B2 low activation superconductor prepared by low-temperature sintering
Fabrication, Transport Current Testing, and Finite Element Analysis of MgB2 Racetrack Coils
Correlation between Zn-Rich Phase and Corrosion/Oxidation Behavior of Sn–8Zn–3Bi Alloy
Sintering process and critical current density of low activation Mg 11 B 2 superconductors from low temperature to high temperature
Superior critical current density obtained in MgB2 bulks through low-cost carbon-encapsulated boron powder
MgB<sub>2</sub>superconducting joints for persistent current operation
Significantly enhanced critical current density in nano-MgB<sub>2</sub>grains rapidly formed at low temperature with homogeneous carbon doping
Improvement in structure and superconductivity of bulk FeSe0.5Te0.5 superconductors by optimizing sintering temperature
Control of core structure in MgB2 wire through tailoring boron powder
Enhancement of superconductivity in the sintered FeSe0.5Te0.5 bulks with proper amount of Sn addition
Superior critical current density obtained in Mg11B2 low activation superconductor by using reactive amorphous 11B and optimizing sintering temperature