Area of research
Materials Chemistry · Electronic, Optical and Magnetic Materials
Research interest
Research focused on Mechanoluminescence and Ion, with related work in Voronoi diagram, Photothermal therapy, Thermoelectric effect. Notable publications include 'High-throughput screening platform for solid electrolytes combining hierarchical ion-transport prediction algorithms', 'CAVD, towards better characterization of void space for ionic transport analysis', and 'A highly efficient and informative method to identify ion transport networks in fast ion conductors'.
Effective long-term storage and repeatable mechanoluminescence of piezoelectrics LiNbO3:1%Pr3+, 0.5%Zn2+
General Screening Rules and Segmented Optimization Strategy for Efficient Thermoelectric Devices Validated by Mg <sub>3</sub> (Sb,Bi) <sub>2</sub> /Bi <sub>0.5</sub> Sb <sub>1.5</sub> Te <sub>3</sub> ‐GeTe Module
Regulating the trap distribution to achieve high-contrast mechanoluminescence with an extended saturation threshold through co-doping Nd<sup>3+</sup> into CaZnOS:Bi<sup>3+</sup>,Li<sup>+</sup>
High-throughput screening platform for solid electrolytes combining hierarchical ion-transport prediction algorithms
CAVD, towards better characterization of void space for ionic transport analysis
A highly efficient and informative method to identify ion transport networks in fast ion conductors
Three dimensional plasmonic assemblies of AuNPs with an overall size of sub-200 nm for chemo-photothermal synergistic therapy of breast cancer