Ding Liangyu, Shi Kaiye, Zhang Qiuxin, Shen Danna, Zhang Xiang, Zhang Wei
Department of Physics, Renmin University of China, Beijing 100872, China.
Beijing Key Laboratory of Opto-electronic Functional Materials and Micro-nano Devices, Renmin University of China, Beijing 100872, China.
Phys Rev Lett. 2021 Feb 26;126(8):083604. doi: 10.1103/PhysRevLett.126.083604.
Exceptional points (EPs) of a non-Hermitian Hamiltonian with parity-time-reversal (PT) symmetry have the potential to drastically enhance the capabilities of metrology and sensing through their power-law growing sensitivity to external perturbation. With the ability of generating and tuning dissipation in a single trapped ion system, we observe rich dynamics and detailed quantum phase transitions from the PT-symmetric phase to the symmetry-breaking phase. In this single qubit full quantum system, we develop a method to precisely determine the location of EP without any fitting parameter, and extract the eigenvalues in a unified way through all parameter regions. We can also obtain the full density matrix by quantum state tomography. Finally, we suggest from theoretical analysis that the periodically driving PT-symmetric non-Hermitian system can be used to measure the magnitude, frequency, and phase of time-dependent perturbation with EP enhancement.
具有宇称-时间反演(PT)对称性的非厄米哈密顿量的例外点(EPs),因其对外部微扰的幂律增长敏感性,有潜力极大地提升计量学和传感能力。利用在单个囚禁离子系统中产生和调节耗散的能力,我们观测到了丰富的动力学以及从PT对称相到对称破缺相的详细量子相变。在这个单量子比特全量子系统中,我们开发了一种无需任何拟合参数就能精确确定例外点位置的方法,并通过所有参数区域以统一方式提取本征值。我们还可以通过量子态层析成像获得完整的密度矩阵。最后,我们从理论分析表明,周期性驱动的PT对称非厄米系统可用于通过例外点增强来测量与时间相关微扰的幅度、频率和相位。