Area of research
Artificial Intelligence · Atomic and Molecular Physics, and Optics
Research interest
Research interests include Quantum Information and Cryptography, Quantum Computing Algorithms and Architecture, Quantum Mechanics and Applications, and Quantum and electron transport phenomena.
One- and two-dimensional cluster states for topological phase simulation and measurement-based quantum computation
Efficient Magic State Cultivation on
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Taming Rydberg Decay with Measurement-Based Quantum Computation
Locating Rydberg decay error in the swap leakage reduction circuit protocol
Transversal Logical Clifford Gates on the Rotated Surface Code with Reconfigurable Neutral Atom Arrays
Gaussian boson sampling with 1,024 squeezed states in 8,176 modes.
Sustaining high-fidelity quantum logic in neutral-atom circuits via mid-circuit operations
Boosted fusion gates above the percolation threshold for scalable graph-state generation
High-efficiency single-photon source above the loss-tolerant threshold for efficient linear optical quantum computing
AI-Enabled Parallel Assembly of Thousands of Defect-Free Neutral Atom Arrays
Longitudinal and Nonlinear Coupling for High-Fidelity Readout of a Superconducting Qubit
Experimental Quantum Error Correction below the Surface Code Threshold via All-Microwave Leakage Suppression
Realization of an untrusted intermediate relay architecture using a quantum dot single-photon source
Scalable photonic quantum technologies.
Boson Sampling Enhanced Quantum Chemistry
Tunable Einstein-Bohr Recoiling-Slit Gedankenexperiment at the Quantum Limit.
Robust quantum computational advantage with programmable 3050-photon Gaussian boson sampling
Electrically Pumped Ultrabright Entangled Photons on Chip
Deterministic resonance fluorescence improvement of single quantum dots by optimized surface passivation.
Programmable higher-order nonequilibrium topological phases on a superconducting quantum processor.
Experimental quantum computational chemistry with optimized unitary coupled cluster ansatz
Heralded Three-Photon Entanglement from a Single-Photon Source on a Photonic Chip
Realization of fractional quantum Hall state with interacting photons.
Gaussian Boson Sampling with Pseudo-Photon-Number-Resolving Detectors and Quantum Computational Advantage
Generation of genuine entanglement up to 51 superconducting qubits.
Solving Graph Problems Using Gaussian Boson Sampling.
Unconditional and Robust Quantum Metrological Advantage beyond N00N States.
Experimental Full Network Nonlocality with Independent Sources and Strict Locality Constraints.
Eliminating temporal correlation in quantum-dot entangled photon source by quantum interference.
Quantum neuronal sensing of quantum many-body states on a 61-qubit programmable superconducting processor.