
معرفی
Kevin Singh is an Assistant Professor at The Ohio State University in the Department of Physics, holding the John W. Wilkins Endowed Professorship. He established the Singh Group in the Physics Research Building on January 1, 2025, focusing on building quantum devices and information processors using individually controlled single atoms.
Education:
- B.S. in Physics from Massachusetts Institute of Technology (2013)
- M.A. in Physics from University of California, Santa Barbara (2016)
- Ph.D. in Physics from University of California, Santa Barbara (2019)
Dr. Singh's research spans quantum information science, atomic physics, and quantum optics with emphasis on neutral atom quantum computing. His group develops dual-species Rydberg atom arrays (rubidium and cesium) for quantum error correction, mid-circuit measurement, and quantum simulation. Key methodologies include optical tweezers for atom rearrangement and Floquet engineering for non-equilibrium quantum dynamics. This work bridges fundamental quantum phenomena with transformative device technologies.
His publication record (2018-2024) shows consistent advancement in neutral-atom quantum computing, featuring dual-species systems for error mitigation and studies of Floquet-engineered quantum matter. Articles appear in premier journals including Nature Physics, Science, and Physical Review X, demonstrating high-impact contributions to quantum processor architecture and non-equilibrium dynamics.
Awards:
- Boeing Quantum Creators Prize (Chicago Quantum Exchange), 2023
- The Maria Lastra Excellence in Mentoring Award (PME, University of Chicago), 2021
Dr. Singh actively recruits undergraduate students, PhD candidates, and postdocs for his laboratory. His prior mentoring at the University of Chicago earned institutional recognition. Research is supported by the John W. Wilkins Endowed Professorship and likely external quantum initiative funding, though specific grants aren't detailed in the source material.
The Singh Group operates from OSU's Physics Research Building, utilizing optical tweezers to create programmable atom arrays. Current work focuses on scaling quantum processors through dual-species architectures and developing real-time feedback protocols for error correction in neutral-atom systems.



