State Key Laboratory of Low-Dimensional Quantum Physics, Department of Physics, Tsinghua University, Beijing 100084, China.
Frontier Science Center for Quantum Information, Beijing 100084, China.
Phys Rev Lett. 2023 Jun 30;130(26):263601. doi: 10.1103/PhysRevLett.130.263601.
Exceptional points (EPs) in non-Hermitian systems have recently attracted wide interest and spawned intriguing prospects for enhanced sensing. However, EPs have not yet been realized in thermal atomic ensembles, which is one of the most important platforms for quantum sensing. Here we experimentally observe EPs in multilevel thermal atomic ensembles and realize enhanced sensing of the magnetic field for 1 order of magnitude. We take advantage of the rich energy levels of atoms and construct effective decays for selected energy levels by employing laser coupling with the excited state, yielding unbalanced decay rates for different energy levels, which finally results in the existence of EPs. Furthermore, we propose the optical polarization rotation measurement scheme to detect the splitting of the resonance peaks, which makes use of both the absorption and dispersion properties and shows an advantage with enhanced splitting compared with the conventional transmission measurement scheme. Additionally, in our system both the effective coupling strength and decay rates are flexibly adjustable, and thus the position of the EPs are tunable, which expands the measurement range. Our Letter not only provides a new controllable platform for studying EPs and non-Hermitian physics, but also provide new ideas for the design of EP-enhanced sensors and opens up realistic opportunities for practical applications in the high-precision sensing of magnetic field and other physical quantities.
非厄米系统中的异常点(EP)最近引起了广泛的关注,并为增强传感带来了有趣的前景。然而,EP 尚未在热原子系综中实现,而热原子系综是量子传感最重要的平台之一。在这里,我们在多级热原子系综中实验观察到 EP,并实现了磁场的增强传感,灵敏度提高了一个数量级。我们利用原子的丰富能级,并通过与激发态的激光耦合来构建对选定能级的有效衰减,从而为不同能级产生不平衡的衰减率,最终导致 EP 的存在。此外,我们提出了光学偏振旋转测量方案来检测共振峰的劈裂,该方案利用了吸收和色散特性,并显示出与传统透射测量方案相比增强的劈裂优势。此外,在我们的系统中,有效耦合强度和衰减率都可以灵活调节,因此 EP 的位置是可调的,从而扩展了测量范围。我们的快报不仅为研究 EP 和非厄米物理提供了一个新的可控平台,而且为 EP 增强传感器的设计提供了新的思路,为磁场和其他物理量的高精度传感的实际应用开辟了现实的机会。