Area of research
Electrical and Electronic Engineering · Biomedical Engineering
Research interest
Research focused on Resonator and Microelectromechanical systems, with related work in Pseudomonas putida, Chromatin, Computational fluid dynamics. Notable publications include 'Bacterial cell lysis induced by pre-acidification greatly promoting the degradation of carried antibiotic resistance genes in zero-valent iron activated Fenton-like processes', 'Stability characterization of vacuum encapsulated MEMS resonators with Au–Sn solder bonding', and '3D-encapsulated VHF MEMS resonator with high frequency stability and low vibration sensitivity'.
Nuclear FGF2 orchestrates phase separation-mediated rDNA chromatin architecture to control BMSCs cell fate
Bacterial cell lysis induced by pre-acidification greatly promoting the degradation of carried antibiotic resistance genes in zero-valent iron activated Fenton-like processes
Experimental verification of a CFD model for the closed plant factory under artificial lighting
Stability characterization of vacuum encapsulated MEMS resonators with Au–Sn solder bonding
3D-encapsulated VHF MEMS resonator with high frequency stability and low vibration sensitivity
Design and characterization of a 3D encapsulation with silicon vias for radio frequency micro-electromechanical system resonator