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Multi-Dress-State Engineered Rydberg Electrometry: Achieving 100-MHz-level Instantaneous-Bandwidth

Atomic Physics 2025-07-14 v5

Abstract

Rydberg atoms, with their giant electric dipole moments and tunable energy-level transitions, offer exceptional potential for microwave (MW) electric field sensing, combining high sensitivity and broad frequency coverage. However, simultaneously achieving high sensitivity and wide instantaneous bandwidth in a Rydberg-based MW transducer remains a critical challenge. Here, we propose a multi-dress-state engineered superheterodyne detection scheme for Rydberg electrometry that exploits a detuning-dependent dual-peak response structure and a Rabi-frequency-driven dip-lifting effect to overcome the limitation on instantaneous bandwidth. By strategically engineering the multiple dress states of Rydberg atoms, we demonstrate a thermal 87Rb\mathrm{^{87}Rb} vapor-based transducer with a record sensitivity of 140.4nVcm1Hz1/2\mathrm{140.4\,nV\,cm^{-1}\,Hz^{-1/2}} and an instantaneous bandwidth of up to 54.6\,MHz. The performance metrics are now approaching the practical requirements of modern MW receivers (100-MHz-level) in certain application fields. This advancement bridges the gap between atomic sensing and real-world applications, paving the way for Rydberg-atom technologies in radar,wireless communication, and spectrum monitoring.

Keywords

Cite

@article{arxiv.2506.10541,
  title  = {Multi-Dress-State Engineered Rydberg Electrometry: Achieving 100-MHz-level Instantaneous-Bandwidth},
  author = {Yuhan Yan and Bowen Yang and Xuejie Li and Haojie Zhao and Binghong Yu and Jianliao Deng and L. Q. Chen and Huadong Cheng},
  journal= {arXiv preprint arXiv:2506.10541},
  year   = {2025}
}

Comments

6 pages, 3 figures