论文标题
混沌光学微孔子中的连贯的完美吸收,以进行有效的模态控制
Coherent Perfect Absorption in Chaotic Optical Microresonators for Efficient Modal Control
论文作者
论文摘要
近年来,非热浪的波浪工程引起了人们对光子学的兴趣。突出现象之一是连贯的完美吸收(CPA),其中电磁散射的an灭是由于多个入射波的破坏性干扰而发生的。该概念已在各种平台中实现,以通过改变激发信号的相对相,以实时控制吸收,散射和辐射。但是,到目前为止,这些研究仅限于简单的光子系统,该系统涉及以明确定义的谐振频率的单个或几种模式。在更复杂的光子系统中实现CPA具有挑战性,因为它通常需要在狭窄的频率范围内工程进行大量共振的相互作用。在这里,我们将光的连贯控制范式扩展到复杂的光子系统,该系统涉及混沌微孔子中的1000多个光学模式。我们有效地在准正常模式(QNM)扩展中对光场进行了模拟,并在实验中证明了混乱的CPA状态及其非铁二聚体,我们利用这些脱位来有效地通过多个激发通道的输入阶段有效地控制腔体激发。我们的结果阐明了除简单共振系统之外的非炎症物理学的普遍性,这为通过混乱的波浪干扰为复杂纳米光学系统的科学和技术铺平了道路。
Non-Hermitian wave engineering has attracted a surge of interest in photonics in recent years. One of the prominent phenomena is coherent perfect absorption (CPA), in which the annihilation of electromagnetic scattering occurs by destructive interference of multiple incident waves. This concept has been implemented in various platforms to demonstrate real-time control of absorption, scattering and radiation by varying the relative phase of the excitation signals. However, so far these studies have been limited to simple photonic systems involving single or few modes at well-defined resonant frequencies. Realizing CPA in more complex photonic systems is challenging because it typically requires engineering the interplay of a large number of resonances featuring large spatial complexity within a narrow frequency range. Here, we extend the paradigm of coherent control of light to a complex photonic system involving more than 1,000 optical modes in a chaotic microresonator. We efficiently model the optical fields within a quasi-normal mode (QNM) expansion, and experimentally demonstrate chaotic CPA states, as well as their non-Hermitian degeneracies, which we leverage to efficiently control the cavity excitation through the input phases of multiple excitation channels. Our results shed light on the universality of non-Hermitian physics beyond simple resonant systems, paving the way for new opportunities in the science and technology of complex nanophotonic systems by chaotic wave interference.