Area of research
Atomic and Molecular Physics, and Optics · Materials Chemistry
Research interest
Research focused on Nanotechnology and Electromagnetic shielding, with related work in Dielectric, Composite material, Intrinsically disordered proteins. Notable publications include 'Synthesis and electromagnetic wave absorption performances of a novel (Mo0.25Cr0.25Ti0.25V0.25)3AlC2 high-entropy MAX phase', 'Construction of in-situ grid conductor skeleton and magnet core in biodegradable poly (butyleneadipate-co-terephthalate) for efficient electromagnetic interference shielding and...', and 'Suppressing Dielectric Loss in MXene/Polymer Nanocomposites through Interfacial Interactions'.
Van der Waals Engineering of One-Transistor-One-Ferroelectric-Memristor Architecture for an Energy-Efficient Neuromorphic Array
Controllable <i>z</i>-Polarized Spin Current in Artificially Structured Ferromagnetic Oxide with Strong Spin–Orbit Coupling
Suppressing Dielectric Loss in MXene/Polymer Nanocomposites through Interfacial Interactions
Ferroelectric Aluminum Scandium Nitride Transistors with Intrinsic Switching Characteristics and Artificial Synaptic Functions for Neuromorphic Computing
Construction of in-situ grid conductor skeleton and magnet core in biodegradable poly (butyleneadipate-co-terephthalate) for efficient electromagnetic interference shielding and low reflection
Hierarchical assembly of intrinsically disordered short peptides
Constructing 3D expanded graphite-silver segregated network structure for ultra-efficient EMI shielding and low reflection
State of the art overview wearable biohazard gas sensors based on nanosheets for environment monitoring applications
Effects of extract solution from magnesium alloys supplemented with different compositions of rare earth elements on in vitro epithelial and osteoblast progenitor cells
Synthesis and electromagnetic wave absorption performances of a novel (Mo0.25Cr0.25Ti0.25V0.25)3AlC2 high-entropy MAX phase
Sierpiński Structure and Electronic Topology in Bi Thin Films on InSb(111)B Surfaces
Transforming Ti<sub>3</sub>C<sub>2</sub>T<sub>x</sub> MXenes into nanoscale ionic materials <i>via</i> an electronic interaction strategy
Magnetic nanomaterials-mediated cancer diagnosis and therapy