Area of research
Electronic, Optical and Magnetic Materials · Aerospace Engineering
Research interest
Research interests include Materials science, Microwave, Reflection loss, Optoelectronics, Dielectric, and Polarization (electrochemistry).
Fish Tofu-structured Se/prussian blue derived composites for exceptional microwave absorption
CNTs decorated Fe3O4/Co–Ni polyhedrons with heterogeneous interfaces for promoting microwave absorption
Controllable Design of “Nested Doll” MoS<sub>2</sub>/V<sub>2</sub>O<sub>3</sub> Heterostructures Promotes Polarization Effects for High‐Efficiency Microwave Absorption
Synergistic Dielectric–Magnetic Enhancement via Phase‐Evolution Engineering and Dynamic Magnetic Resonance
Hierarchical Fe-Co@TiO<sub>2</sub> with Incoherent Heterointerfaces and Gradient Magnetic Domains for Electromagnetic Wave Absorption
Bird-Nest-Like Multi-Interfacial MXene@SiC<sub>NWs</sub>@Co/C Hybrids with Enhanced Electromagnetic Wave Absorption
Construct of CoZnO/CSP biomass-derived carbon composites with broad effective absorption bandwidth of 7.2 GHz and excellent microwave absorption performance
Construction of self-assembled bilayer core–shell V2O3 microspheres as absorber with superior microwave absorption performance
Hierarchical Engineering of Double‐Shelled Nanotubes toward Hetero‐Interfaces Induced Polarization and Microscale Magnetic Interaction
Customizing Heterointerfaces in Multilevel Hollow Architecture Constructed by Magnetic Spindle Arrays Using the Polymerizing‐Etching Strategy for Boosting Microwave Absorption
Hollow Engineering to Co@N‐Doped Carbon Nanocages via Synergistic Protecting‐Etching Strategy for Ultrahigh Microwave Absorption
Hollow MoC/NC sphere for electromagnetic wave attenuation: direct observation of interfacial polarization on nanoscale hetero-interfaces
The composition design of MOF-derived Co-Fe bimetallic autocatalysis carbon nanotubes with controllable electromagnetic properties