English

Exceptional Point-enhanced Rydberg Atomic Electrometers

Atomic Physics 2026-02-10 v2

Abstract

Rydberg atoms, with their large transition dipole moments and extreme sensitivity to electric fields, have attracted widespread attention as promising candidates for next-generation quantum precision electrometry. Meanwhile, exceptional points (EPs) in non-Hermitian systems have opened new avenues for ultrasensitive metrology. Despite increasing interest in non-Hermitian physics, EP-enhanced sensitivity has rarely been explored in Rydberg atomic platforms. Here, we provide a new theoretical understanding of Autler-Townes (AT)-based Rydberg electrometry under non-Hermitian conditions, showing that dissipation fundamentally modifies the spectral response and enables sensitivity enhancement via EP-induced nonlinearity. Experimentally, we realize a second-order EP in a passive thermal Rydberg system without requiring gain media or cryogenics, and demonstrate the first EP-enhanced atomic electrometer. The EP can be tuned in real time by adjusting laser and microwave parameters, forming a flexible and scalable platform. Near the EP, the system exhibits a square-root response, yielding a nearly 20-fold enhancement in responsivity. Using amplitude-based detection, we achieve a sensitivity of 22.68 nVcm1Hz1/222.68~\mathrm{nV cm^{-1} Hz^{-1/2}} under realistic conditions. Our work establishes a practical, tunable platform for EP-enhanced sensing and real-time control, with broad implications for quantum metrology in open systems.

Keywords

Cite

@article{arxiv.2506.12861,
  title  = {Exceptional Point-enhanced Rydberg Atomic Electrometers},
  author = {Chao Liang and Ce Yang and Wei Huang and Li You},
  journal= {arXiv preprint arXiv:2506.12861},
  year   = {2026}
}

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R2 v1 2026-07-01T03:18:29.687Z