Area of research
Materials Chemistry · Electrical and Electronic Engineering
Research interest
Research interests include Materials science, Optoelectronics, Nanotechnology, Nanowire, Ohmic contact, and Sensitivity (control systems).
Large On–Off Enhancement of Au Nanocatalyst Contacts to ZnO Nanowires with Bulk and Surface Oxygen Modification
High Voltage Design Strategies for Gallium Oxide Power Devices
A 4H-SiC JFET with a monolithically integrated temperature sensor
Demonstrating SiC <i>In Situ</i> Rounded Trench Processing Technologies for Future Power Trench MOSFET Applications
On short channel effects in high voltage JFETs: A theoretical analysis
Design of Monolithically Integrated Temperature Sensors in 4H-SiC JFETs
A Low‐Temperature Batch Process for the Deposition of High‐Quality Conformal Alumina Thin Films for Electronic Applications
Fabrication of Quasi-Vertical GaN-On-SiC Trench MOSFETs
Development of Vertical GaN FETs for Bi-directional Battery Charging
A Facile Method for the Non-Covalent Amine Functionalization of Carbon-Based Surfaces for Use in Biosensor Development
Enhancement of Multiwalled Carbon Nanotubes’ Electrical Conductivity Using Metal Nanoscale Copper Contacts and Its Implications for Carbon Nanotube-Enhanced Copper Conductivity
Study of GaN Dual-Drain Magnetic Sensor Performance at Elevated Temperatures
Dual-Drain GaN Magnetic Sensor Compatible With GaN RF Power Technology
Analysis of GaN MagFETs compatible with RF power technology
Investigation into the effects of surface stripping ZnO nanosheets
General Integration of Vertical Nanowire Arrays with Silicon for Highly Parallel Electronic Device Applications
Forming reproducible non-lithographic nanocontacts to assess the effect of contact compressive strain in nanomaterials
Growth of ZnO nanowire arrays directly onto Si via substrate topographical adjustments using both wet chemical and dry etching methods
The effect of metal layers on the morphology and optical properties of hydrothermally grown zinc oxide nanowires
Analysis of Single Nanoparticle Growth Environments to Explain Abnormal Ostwald Ripening of Nanoparticle Ensembles