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Robust Light State by Quantum Phase Transition in Non-Hermitian Optical Materials

机译:非埃尔米特光学材料中量子相变的稳健光态

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摘要

Robust light transport is the heart of optical information processing, leading to the search for robust light states by topological engineering of material properties. Here, it is shown that quantum phase transition, rather than topology, can be strategically exploited to design a novel robust light state. We consider an interface between parity-time (PT) symmetric media with different quantum phases and use complex Berry phase to reveal the associated quantum phase transition and topological nature. While the system possesses the same topological order within different quantum phases, phase transition from PT symmetry to PT breaking across the interface in the synthetic non-Hermitian metamaterial system facilitates novel interface states, which are robust against a variety of gain/loss perturbations and topological impurities and disorder. The discovery of the robust light state by quantum phase transition may promise fault-tolerant light transport in optical communications and computing.
机译:稳健的光传输是光学信息处理的核心,导致通过材料特性的拓扑工程来寻找稳健的光态。在此表明,可以从策略上利用量子相变而不是拓扑来设计新颖的鲁棒光态。我们考虑具有不同量子相位的奇偶时间(PT)对称介质之间的接口,并使用复杂的Berry相来揭示相关的量子相变和拓扑性质。尽管系统在不同的量子相中具有相同的拓扑顺序,但从PT对称性到PT跨非合成的非Hermitian超材料系统中的界面的相变的相变,促进了新颖的界面状态,这些界面状态对各种增益/损耗扰动和拓扑结构均具有鲁棒性杂质和无序。通过量子相变发现鲁棒的光态可以保证光通信和计算中的容错光传输。

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