Liu Wenquan, Wu Yang, Duan Chang-Kui, Rong Xing, Du Jiangfeng
Hefei National Laboratory for Physical Sciences at the Microscale and School of Physical Sciences, University of Science and Technology of China, Hefei 230026, China.
CAS Key Laboratory of Microscale Magnetic Resonance, University of Science and Technology of China, Hefei 230026, China.
Phys Rev Lett. 2021 Apr 30;126(17):170506. doi: 10.1103/PhysRevLett.126.170506.
The exceptional point, known as the non-Hermitian degeneracy, has special topological structure, leading to various counterintuitive phenomena and novel applications, which are refreshing our cognition of quantum physics. One particularly intriguing behavior is the mode switch phenomenon induced by dynamically encircling an exceptional point in the parameter space. While these mode switches have been explored in classical systems, the experimental investigation in the quantum regime remains elusive due to the difficulty of constructing time-dependent non-Hermitian Hamiltonians in a real quantum system. Here we experimentally demonstrate dynamically encircling the exceptional point with a single nitrogen-vacancy center in diamond. The time-dependent non-Hermitian Hamiltonians are realized utilizing a dilation method. Both the asymmetric and symmetric mode switches have been observed. Our Letter reveals the topological structure of the exceptional point and paves the way to comprehensively explore the exotic properties of non-Hermitian Hamiltonians in the quantum regime.
例外点,即非厄米简并点,具有特殊的拓扑结构,会导致各种违反直觉的现象和新颖的应用,正在刷新我们对量子物理的认知。一种特别有趣的行为是在参数空间中动态环绕例外点所引发的模式切换现象。虽然这些模式切换已在经典系统中得到研究,但由于在实际量子系统中构建含时非厄米哈密顿量存在困难,在量子领域的实验研究仍然难以实现。在此,我们通过实验展示了利用金刚石中的单个氮空位中心动态环绕例外点。通过一种伸缩方法实现了含时非厄米哈密顿量。我们观察到了不对称和对称模式切换。我们的论文揭示了例外点的拓扑结构,并为全面探索量子领域中非厄米哈密顿量的奇异特性铺平了道路。