Area of research
Atomic and Molecular Physics, and Optics · Artificial Intelligence
Research interest
Research interests include Cold Atom Physics and Bose-Einstein Condensates, Quantum Information and Cryptography, Advanced Fiber Laser Technologies, and Quantum optics and atomic interactions.
Efficient measurement of neutral-atom qubits with matched filters
Universal Neutral-Atom Quantum Computer with Individual Optical Addressing and Nondestructive Readout
Architecture for fast implementation of quantum low-density parity-check codes with optimized Rydberg gates
Variational Simulation of the Lipkin-Meshkov-Glick Model on a Neutral Atom Quantum Computer
Deterministic carving of quantum states with Grover's algorithm
Efficient Preparation of Entangled States in Cavity QED with Grover's Algorithm.
Laser Cooling and Qubit Measurements on a Forbidden Transition in Neutral Cs Atoms.
Interleaved dual-species arrays of single atoms using a passive optical element and one trapping laser.
Experimental observation of subabsorption
Fast measurements and multiqubit gates in dual-species atomic arrays
Enhanced measurement of neutral-atom qubits with machine learning
Affordable medium-finesse optical cavity for diode laser stabilization
Benchmarking a neutral-atom quantum computer
Robust atom-photon gate for quantum information processing
Numerical study of the spatial coherence of light in collective spontaneous emission
Midcircuit Measurements on a Single-Species Neutral Alkali Atom Quantum Processor
Sensitivity of quantum gate fidelity to laser phase and intensity noise
Sampling frequency thresholds for the quantum advantage of the quantum approximate optimization algorithm
Sampling frequency thresholds for the quantum advantage of the quantum approximate optimization algorithm
Fault-tolerant measurement-free quantum error correction with multiqubit gates
Reducing Rydberg-state dc polarizability by microwave dressing
Nanoscale addressing and manipulation of neutral atoms using electromagnetically induced transparency
Multiscale architecture for fast optical addressing and control of large-scale qubit arrays.
Multi-qubit entanglement and algorithms on a neutral-atom quantum computer
Multi-qubit entanglement and algorithms on a neutral-atom quantum computer.
Simple, passive design for large optical trap arrays for single atoms
An architecture for quantum networking of neutral atom processors
Spatial Coherence of Light in Collective Spontaneous Emission
Sampling Frequency Thresholds for Quantum Advantage of Quantum Approximate Optimization Algorithm
Quantum Simulators: Architectures and Opportunities