Area of research
Electrical and Electronic Engineering · Biomedical Engineering
Research interest
Research interests include Materials science, Quantum tunnelling, Monolayer, Chemistry, Plasmon, and Chemical physics.
Molecular switching by proton-coupled electron transport drives giant negative differential resistance
Plasmonic phenomena in molecular junctions: principles and applications
Dynamic molecular switches with hysteretic negative differential conductance emulating synaptic behaviour
Preventing the Capillary-Induced Collapse of Vertical Nanostructures
Interplay between Interfacial Energy, Contact Mechanics, and Capillary Forces in EGaIn Droplets
Verification and Temperature-Dependent Rectification by HBQ, the Smallest Unimolecular Donor–Acceptor Rectifier
The energy level alignment of the ferrocene–EGaIn interface studied with photoelectron spectroscopy
Electric-field-driven dual-functional molecular switches in tunnel junctions
Charge disproportionate molecular redox for discrete memristive and memcapacitive switching
Large Increase in the Dielectric Constant and Partial Loss of Coherence Increases Tunneling Rates across Molecular Wires
A Single Atom Change Turns Insulating Saturated Wires into Molecular Conductors
Interplay of Collective Electrostatic Effects and Level Alignment Dictates the Tunneling Rates across Halogenated Aromatic Monolayer Junctions
Transition from direct to inverted charge transport Marcus regions in molecular junctions via molecular orbital gating
Black Phosphorus Carbide as a Tunable Anisotropic Plasmonic Metasurface
Control over Near-Ballistic Electron Transport through Formation of Parallel Pathways in a Single-Molecule Wire
Tuning the Tunnelling Decay Coefficient Using Single Polarizable Atoms via Energy Level Engineering of the Frontier Orbitals
Tuning the Tunnelling Decay Coefficient Using Single Polarizable Atoms via Energy Level Engineering of the Frontier Orbitals
Robust resistive memory devices using solution-processable metal-coordinated azo aromatics
Molecular diodes with rectification ratios exceeding 105 driven by electrostatic interactions
Highly efficient on-chip direct electronic–plasmonic transducers
Few‐Layer Black Phosphorus Carbide Field‐Effect Transistor via Carbon Doping
A Black Phosphorus Carbide Infrared Phototransistor
Multistep nucleation of nanocrystals in aqueous solution
On-chip molecular electronic plasmon sources based on self-assembled monolayer tunnel junctions
Comparison of DC and AC Transport in 1.5–7.5 nm Oligophenylene Imine Molecular Wires across Two Junction Platforms: Eutectic Ga–In versus Conducting Probe Atomic Force Microscope Junctions
Molecular electronic plasmonics
Even the Odd Numbers Help: Failure Modes of SAM-Based Tunnel Junctions Probed via Odd-Even Effects Revealed in Synchrotrons and Supercomputers
Real-Time Dynamics of Galvanic Replacement Reactions of Silver Nanocubes and Au Studied by Liquid-Cell Transmission Electron Microscopy
Real-Time Imaging of the Formation of Au–Ag Core–Shell Nanoparticles
Controlling the direction of rectification in a molecular diode