论文标题

通过强耦合诱导的对称性断裂,中心对称系统中的非线性光学过程

Nonlinear optical processes in centrosymmetric systems by strong-coupling-induced symmetry breaking

论文作者

Welakuh, Davis M., Narang, Prineha

论文摘要

与均衡的非线性敏感性相关的非线性光学过程对于经典技术和量子技术至关重要。但是,反转对称性可防止通过与纳米光子应用相关的几种材料系统中均匀敏感性介导的非线性光学响应。在这里,我们证明了诱导的非线性光学过程,即在反转对称系统中自然禁止的第二和第四谐波生成,通过与高Q光腔的光子模式强烈耦合。作为具有反转对称性的说明性系统,我们考虑了具有单个有效电子的GAA的半导体量子环。对于耦合系统,我们通过更改光结合强度来控制反转对称性破坏,同时允许调整非线性转换效率。我们发现,通过以实验可行的方式提高光结合强度,可以显着提高谐波产生的产量。在几个光子泵场是一个连贯的状态,仅几个光子,我们发现谐波转换效率提高了强耦合而不是使用强烈的泵场。这种新方法适用于各种环形系统,因为对称性破坏的光子环境的特性用于实现较强的光 - 物质相互作用。我们的工作构成了朝着实现在集成光子学中广泛采用的中心对称材料中实现物理上禁止的非线性光学过程的方向前进的一步。

Nonlinear optical processes associated with even-order nonlinear susceptibilities are critical for both classical and quantum technologies. Inversion symmetry, however, prevents nonlinear optical responses mediated by even-order susceptibilities in several material systems pertinent for applications in nanophotonics. Here, we demonstrate induced nonlinear optical processes, namely second- and fourth-harmonic generation that are naturally forbidden in an inversion symmetric system, by strongly coupling to a photon mode of a high-Q optical cavity. As an illustrative system with an inversion symmetry, we consider a semiconductor quantum ring of GaAs that features a single effective electron. For the coupled system, we control the inversion symmetry breaking by changing the light-matter coupling strength which at the same time allows to tune the nonlinear conversion efficiency. We find that the harmonic generation yield can be significantly increased by increasing the light-matter coupling strength in an experimentally feasible way. In the few-photon limit where the incident pump field is a coherent state with just a few photons, we find that the harmonic conversion efficiency is increased for strong coupling as opposed to using intense pump fields. This new approach is applicable to a wide variety of centrosymmetric systems as the symmetry breaking rest on the properties of the photonic environment used to achieve strong light-matter interaction. Our work constitutes a step forward in the direction of realizing physically forbidden nonlinear optical processes in centrosymmetric materials widely adopted for applications in integrated photonics.

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