Area of research
Electrical and Electronic Engineering · Materials Chemistry
Research interest
Research focused on Photoluminescence and Quantum dot, with related work in Photon, Semiconductor, Microscopy. Notable publications include 'Van der Waals polarity-engineered 3D integration of 2D complementary logic', 'Deep learning in two-dimensional materials: Characterization, prediction, and design', and '2D ferroelectric narrow-bandgap semiconductor Wurtzite’ type α-In2Se3 and its silicon-compatible growth'.
2D ferroelectric narrow-bandgap semiconductor Wurtzite’ type α-In2Se3 and its silicon-compatible growth
10-km passive drone detection using broadband quantum compressed sensing imaging
High-accuracy disposable micro-optical anti-counterfeiting labels based on single-molecule quantum coherence
Noise-tolerance detection of high-frequency dynamic targets with mid-infrared thermal radiation via intra-cavity enhanced upconversion
High-resolution single-photon spectrum and its applications in vibration measurements
Photon‐Efficient Block Compressed Sensing Imaging Using Vision Transformer
Measurement of absolute biexciton quantum yields in single quantum dots: Breaking the limitation of weak excitation conditions
Van der Waals polarity-engineered 3D integration of 2D complementary logic
Deep learning in two-dimensional materials: Characterization, prediction, and design
Three-dimensional quantum imaging of dynamic targets using quantum compressed sensing
Single-photon frequency-modulated continuous-wave Lidar based on quantum compressed sensing
Quantum compressed sensing-based compound system for ranging/vibration measurement
Step-edge controlled fast growth of wafer-scale MoSe2 films by MOCVD
Accurate Visualization of Metabolic Aberrations in Cancer Cells by Temperature Mapping with Quantum Coherence Modulation Microscopy
High frequency near-infrared up-conversion single-photon imaging based on the quantum compressed sensing
Optical interference effect in the hybrid quantum dots/two-dimensional materials: photoluminescence enhancement and modulation
Efficient, Stable, and Photoluminescence Intermittency-Free CdSe-Based Quantum Dots in the Full-Color Range
Visualizing Quantum Coherence Based on Single-Molecule Coherent Modulation Microscopy