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Reconfigurable parity-time symmetry transition in phase change metamaterials

机译:可重构parity-time对称过渡相变材料

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Although the conceptually remarkable, experimental illustration of parity-time (PT) symmetric quantum systems stays unexplored, their photonics analogues are explored by taking advantage of the similarity between the Helmholtz and Schrodinger equations. However, the static nature of the constitutive parameters of photonics structure inherently limits an achievement of dynamic PT-symmetry transition. We propose mid-infrared metamaterials (MMs) consisting of two orthogonally orientated metallic metaatoms with one resonator integrated by a chalcogenide glass, GeTe. The PT-symmetry breaking can be actively transited to PT-symmetry by varying the structural state of GeTe between amorphous and crystalline while fixing the MM geometry. An electric-thermal model is constructed to illustrate that reversible switching between PT-symmetry and PT-symmetry breaking can be obtained in similar to 270 ns. Our theoretical work lays the basis for designing high-speed reconfigurable PT-symmetry photonics systems that provide a promising approach for dynamically engineering non-Hermitian quantum symmetry.
机译:虽然概念上显著,实验说明parity-time (PT)对称的量子系统保持未知,光子学类似物被利用了亥姆霍兹和薛定谔之间的相似性方程。本构参数的光学结构固有的限制动态的成就PT-symmetry过渡。超材料(MMs)组成的两个活动面向金属metaatoms一个谐振器集成的硫族化物玻璃,GeTe。空运到PT-symmetry改变结构的GeTe无定形和状态水晶虽然修复MM几何。电热模型说明可逆之间切换PT-symmetry和PT-symmetry打破获得类似于270 ns。设计高速的工作奠定了基础可重构PT-symmetry光子学系统动态地提供一个有前途的方法工程non-Hermitian量子对称。

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