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Enhanced sensitivity at higher-order exceptional points

机译:在高阶异常点处增强了灵敏度

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摘要

Non-Hermitian degeneracies, also known as exceptional points, have recently emerged as a new way to engineer the response of open physical systems, that is, those that interact with the environment. They correspond to points in parameter space at which the eigenvalues of the underlying system and the corresponding eigenvectors simultaneously coalesce(1-3). In optics, the abrupt nature of the phase transitions that are encountered around exceptional points has been shown to lead to many intriguing phenomena, such as loss-induced transparency(4), unidirectional invisibility(5,6), band merging(7,8), topological chirality(9,10) and laser mode selectivity(11,12). Recently, it has been shown that the bifurcation properties of second-order non-Hermitian degeneracies can provide a means of enhancing the sensitivity (frequency shifts) of resonant optical structures to external perturbations(13). Of particular interest is the use of even higher-order exceptional points (greater than second order), which in principle could further amplify the effect of perturbations, leading to even greater sensitivity. Although a growing number of theoretical studies have been devoted to such higher-order degeneracies(14-16), their experimental demonstration in the optical domain has so far remained elusive. Here we report the observation of higher-order exceptional points in a coupled cavity arrangement-specifically, a ternary, parity-time-symmetric photonic laser molecule-with a carefully tailored gain-loss distribution. We study the system in the spectral domain and find that the frequency response associated with this system follows a cube-root dependence on induced perturbations in the refractive index. Our work paves the way for utilizing non-Hermitian degeneracies in fields including photonics, optomechanics(10), microwaves(9) and atomic physics(17,18).
机译:非埃尔米特性退化,也称为例外点,最近成为工程开放物理系统(即与环境相互作用的物理系统)响应的一种新方法。它们对应于参数空间中的点,基础系统的特征值和相应的特征向量在这些点同时合并(1-3)。在光学中,已证明在特殊点附近遇到的相变的突然性质会导致许多有趣的现象,例如损耗引起的透明性(4),单向不可见性(5,6),波段合并(7,8) ),拓扑手性(9,10)和激光模式选择性(11,12)。近来,已经表明二阶非Hermitian简并的分叉性质可以提供一种增强共振光学结构对外部扰动的灵敏度(频率偏移)的手段(13)。特别令人感兴趣的是使用甚至更高阶的异常点(大于二阶),这在原则上可以进一步放大摄动的影响,从而带来更高的灵敏度。尽管越来越多的理论研究致力于此类高阶变性(14-16),但迄今为止,它们在光学领域的实验证明仍然难以捉摸。在这里,我们报告了在耦合腔体布置中,特别是三元,奇偶性时间对称的光子激光分子中,具有精心定制的增益-损耗分布的高阶例外点的观察结果。我们在光谱域中研究了该系统,发现与该系统相关的频率响应遵循立方根依赖于折射率的诱导扰动。我们的工作为在光子学,光机力学(10),微波(9)和原子物理学(17,18)等领域利用非赫米特简并性铺平了道路。

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  • 来源
    《Nature》 |2017年第7666期|187-191|共5页
  • 作者单位

    Univ Cent Florida, CREOL, Coll Opt & Photon, Orlando, FL 32816 USA;

    Univ Cent Florida, CREOL, Coll Opt & Photon, Orlando, FL 32816 USA;

    Univ Cent Florida, CREOL, Coll Opt & Photon, Orlando, FL 32816 USA;

    Univ Cent Florida, CREOL, Coll Opt & Photon, Orlando, FL 32816 USA;

    Michigan Technol Univ, Dept Phys, Houghton, MI 49931 USA|Michigan Technol Univ, Henes Ctr Quantum Phenomena, Houghton, MI 49931 USA;

    Univ Cent Florida, CREOL, Coll Opt & Photon, Orlando, FL 32816 USA;

    Univ Cent Florida, CREOL, Coll Opt & Photon, Orlando, FL 32816 USA;

  • 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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