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基于光机械诱导压缩的非厄米手性声子学。

Non-Hermitian chiral phononics through optomechanically induced squeezing.

机构信息

Center for Nanophotonics, AMOLF, Amsterdam, the Netherlands.

Institute for Theoretical Physics, ETH Zürich, Zurich, Switzerland.

出版信息

Nature. 2022 Jun;606(7912):82-87. doi: 10.1038/s41586-022-04609-0. Epub 2022 Jun 1.

Abstract

Imposing chirality on a physical system engenders unconventional energy flow and responses, such as the Aharonov-Bohm effect and the topological quantum Hall phase for electrons in a symmetry-breaking magnetic field. Recently, great interest has arisen in combining that principle with broken Hermiticity to explore novel topological phases and applications. Here we report phononic states with unique symmetries and dynamics that are formed when combining the controlled breaking of time-reversal symmetry with non-Hermitian dynamics. Both of these are induced through time-modulated radiation pressure forces in small nano-optomechanical networks. We observe chiral energy flow among mechanical resonators in a synthetic dimension and Aharonov-Bohm tuning of their eigenmodes. Introducing particle-non-conserving squeezing interactions, we observe a non-Hermitian Aharonov-Bohm effect in ring-shaped networks in which mechanical quasiparticles experience parametric gain. The resulting complex mode spectra indicate flux-tuning of squeezing, exceptional points, instabilities and unidirectional phononic amplification. This rich phenomenology points the way to exploring new non-Hermitian topological bosonic phases and applications in sensing and transport that exploit spatiotemporal symmetry breaking.

摘要

在物理系统中引入手征性会产生非常规的能量流动和响应,例如在对称破缺磁场中电子的 Aharonov-Bohm 效应和拓扑量子霍尔相。最近,人们对将这一原理与破缺厄米性相结合以探索新的拓扑相和应用产生了极大的兴趣。在这里,我们报告了当结合时间反演对称性的受控破缺与非厄米动力学时,形成的具有独特对称性和动力学的声子态。这两种情况都是通过在小型纳米光机械网络中时变辐射压力力来诱导的。我们观察到机械谐振器在合成维度中的手征能量流动以及本征模式的 Aharonov-Bohm 调谐。通过引入粒子非守恒压缩相互作用,我们在环形网络中观察到非厄米 Aharonov-Bohm 效应,其中机械准粒子经历参数增益。由此产生的复杂模式谱表明,压缩、异常点、不稳定性和单向声子放大的通量调谐。这种丰富的现象学为探索新的非厄米拓扑玻色子相以及利用时空对称破缺的传感和输运应用指明了方向。

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