论文标题
被动纳米光子学中的抗统一时间对称性
Anti-Parity-Time Symmetry in Passive Nanophotonics
论文作者
论文摘要
在非铁元素光学系统中的平均时间(PT)对称性有望在保守的光学元件中发现不同的光学效应和应用。它的对应抗PT对称性对应着另一类有趣的光学现象,并意味着对异国光操纵的互补技术。尽管进步令人兴奋,但到目前为止,反PT对称性仅在笨重的系统或光学增益中才实现。在这里,我们通过使用一个完全通过的纳米光子平台,通过使用三个evanscyply耦合的波导来对非抗PPT对称性的非芯片实现。通过将金属膜沉积在中心波导上以引入强损失,可以实现抗PT系统。使用微助方法来调整波导的折射率,观察到引人注目的行为,例如相等的功率拆分,同步振幅调制,相处对照的耗散以及从反对对称性的过渡到其损坏的相。我们的结果强调了异国情调的抗血症纳米光子学将与同一芯片上的常规电路合并,从而为量子光学研究和可扩展信息处理创建有价值的芯片设备。
Parity-time (PT) symmetry in non-Hermitian optical systems promises distinct optical effects and applications not found in conservative optics. Its counterpart, anti-PT symmetry, subscribes another class of intriguing optical phenomena and implies complementary techniques for exotic light manipulation. Despite exciting progress, so far anti-PT symmetry has only been realized in bulky systems or with optical gain. Here, we report an on-chip realization of non-Hermitian optics with anti-PT symmetry, by using a fully-passive, nanophotonic platform consisting of three evanescently coupled waveguides. By depositing a metal film on the center waveguide to introduce strong loss, an anti-PT system is realized. Using microheaters to tune the waveguides' refractive indices, striking behaviors are observed such as equal power splitting, synchronized amplitude modulation, phase-controlled dissipation, and transition from anti-PT symmetry to its broken phase. Our results highlight exotic anti-Hermitian nanophotonics to be consolidated with conventional circuits on the same chip, whereby valuable chip devices can be created for quantum optics studies and scalable information processing.