High-Resolution Quantum Sensing with Rydberg Atomic Receiver: Principles, Experiments and Future Prospects
Minze Chen, Tianqi Mao, Zhiao Zhu, Haonan Feng, Ge Gao, Zhonghuai Wu, Wei Xiao, Zhongxiang Li, Dezhi Zheng

TL;DR
This paper introduces a quantum radar system using Rydberg atoms that achieves high resolution and bandwidth, demonstrating experimental centimeter-level ranging and potential for sub-centimeter future resolution.
Contribution
It proposes a novel Rydberg atomic receiver architecture for quantum radar, including a nonlinear compensation method and compressive sensing algorithm, validated through experiments.
Findings
Achieved 1.06 cm ranging accuracy in experiments.
Synthesized GHz bandwidth enabling 15 cm target resolution.
Validated the feasibility of quantum sensing with Rydberg atomic receivers.
Abstract
Quantum sensing using Rydberg atoms offers unprecedented opportunities for next-generation radar systems, transcending classical limitations in miniaturization and spectral agility. Implementing this paradigm for radar sensing, this work proposes a quantum-enhanced radar reception architecture enabled by the emerging Rydberg atomic receiver, replacing conventional antenna-to-mixer chains with a centimeter-scale vapor cell. The proposed approach is based on electromagnetically induced transparency with the Autler-Townes splitting enabling direct RF-to-optical downconversion within the atomic medium via an external co-frequency reference. To circumvent the intrinsic bottleneck on instantaneous bandwidth of atomic receiver, we invoke a non-uniform stepped-frequency synthesis strategy combining coarse laser frequency tuning with fine AC-Stark shift compensation. Additionally, we establish a…
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Taxonomy
TopicsAtomic and Subatomic Physics Research · Cold Atom Physics and Bose-Einstein Condensates · Quantum optics and atomic interactions
