Department of Materials Science and Engineering, University of Pennsylvania, Philadelphia, PA, 19104, USA.
Department of Electrical Engineering, The State University of New York at Buffalo, Buffalo, NY, 14260, USA.
Nat Commun. 2018 Apr 3;9(1):1308. doi: 10.1038/s41467-018-03822-8.
Zero-energy particles (such as Majorana fermions) are newly predicted quasiparticles and are expected to play an important role in fault-tolerant quantum computation. In conventional Hermitian quantum systems, however, such zero states are vulnerable and even become vanishing if couplings with surroundings are of the same topological nature. Here we demonstrate a robust photonic zero mode sustained by a spatial non-Hermitian phase transition in a parity-time (PT) symmetric lattice, despite the same topological order across the entire system. The non-Hermitian-enhanced topological protection ensures the reemergence of the zero mode at the phase transition interface when the two semi-lattices under different PT phases are decoupled effectively in their real spectra. Residing at the midgap level of the PT symmetric spectrum, the zero mode is topologically protected against topological disorder. We experimentally validated the robustness of the zero-energy mode by ultrafast heterodyne measurements of light transport dynamics in a silicon waveguide lattice.
零能粒子(如马约拉纳费米子)是新预测的准粒子,预计在容错量子计算中发挥重要作用。然而,在传统的厄米量子系统中,如果与环境的耦合具有相同的拓扑性质,那么这些零态很容易受到破坏,甚至消失。在这里,我们展示了一种由宇称时间(PT)对称晶格中的空间非厄米相变维持的稳健光子零模,尽管整个系统具有相同的拓扑序。非厄米增强的拓扑保护确保了当处于不同 PT 相的两个半晶格在其真实谱中有效解耦时,零模在相变界面处重新出现。零模位于 PT 对称谱的带隙中间能级,因此在拓扑无序方面受到拓扑保护。我们通过超快外差测量硅波导晶格中的光输运动力学,实验验证了零能模式的鲁棒性。