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Topological complex-energy braiding of non-Hermitian bands

机译:非封闭乐队拓扑复合能编织

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摘要

Effects connected with the mathematical theory of knots~(1)emerge in many areas of science, from physics~(2,3)to biology~(4). Recent theoretical work discovered that the braid group characterizes the topology of non-Hermitian periodic systems~(5), where the complex band energies can braid in momentum space. However, such braids of complex-energy bands have not been realized or controlled experimentally. Here, we introduce a tight-binding lattice model that can achieve arbitrary elements in the braid group of two strands ğ”¹_(2). We experimentally demonstrate such topological complex-energy braiding of non-Hermitian bands in a synthetic dimension~(6,7). Our experiments utilize frequency modes in two coupled ring resonators, one of which undergoes simultaneous phase and amplitude modulation. We observe a wide variety of two-band braiding structures that constitute representative instances of links and knots, including the unlink, the unknot, the Hopf link and the trefoil. We also show that the handedness of braids can be changed. Our results provide a direct demonstration of the braid-group characterization of non-Hermitian topology and open a pathway for designing and realizing topologically robust phases in open classical and quantum systems.
机译:与结的数学理论有关的效果〜(1)在许多科学领域出现,从物理学〜(2,3)到生物学〜(4)。最近的理论上发现,编织组的特征是非密封周期系统的拓扑结构〜(5),其中复杂频带能量可以在动量空间中编织。然而,这种复杂能带的辫子尚未实验或控制。在这里,我们介绍了一个紧密结合的晶格模型,可以在两条链中的编织组中达到任意元素ğ“¹_(2)。我们通过实验展示了合成维度在合成维度中的非封闭乐队的拓扑复合能编织〜(6,7)。我们的实验利用两个耦合环谐振器中的频率模式,其中一个耦合环谐振器经历同时相位和幅度调制。我们观察各种两频辫子结构,构成链接和结的代表实例,包括取消链接,unckotn,hopf链路和三叶草。我们还表明,可以改变辫子的手性。我们的结果提供了非密封拓扑的编织组特征的直接证明,并在开放的经典和量子系统中打开了用于设计和实现拓扑鲁棒阶段的途径。

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  • 来源
    《Nature》 |2021年第7879期|59-64|共6页
  • 作者单位

    Ginzton Laboratory and Department of Electrical Engineering Stanford University;

    Ginzton Laboratory and Department of Electrical Engineering Stanford University;

    Ginzton Laboratory and Department of Electrical Engineering Stanford University;

    Ginzton Laboratory and Department of Electrical Engineering Stanford University;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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