Enhanced optical nonlinearities under collective strong light-matter coupling

R. Ribeiro, Jorge A. Campos-Gonzalez-Angulo, N. Giebink, Wei Xiong, J. Yuen-Zhou
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引用次数: 16

Abstract

Optical microcavities and metallic nanostructures have been shown to significantly modulate the dynamics and spectroscopic response of molecular systems. We present a study of the nonlinear optics of a model consisting of $N$ anharmonic multilevel systems (e.g., Morse oscillators) undergoing collective strong coupling with a resonant infrared microcavity. We find that, under experimentally accessible conditions, molecular systems in microcavities may have nonlinear phenomena significantly intensified due to the high quality of polariton resonances and the enhanced microcavity electromagnetic energy density relative to free space. Particularly large enhancement of multiphoton absorption happens when multipolariton states are resonant with bare molecule multiphoton transitions. In particular, our model predicts two-photon absorption cross section enhancements by several orders of magnitude relative to free space when the Rabi splitting $\Omega_R$ is approximately equal to the molecular anharmonic shift $2\Delta$. Our results provide rough upper bounds to resonant nonlinear response enhancement factors as relaxation to dark states is treated phenomenologically. Notably, ensembles of two-level systems undergoing strong coupling with a cavity (described by the Tavis-Cummings model) show no such optical nonlinearity enhancements, highlighting the rich phenomenology afforded by multilevel anharmonic systems. Similar conclusions are expected to hold for excitonic systems that share features with our model (e.g., molecular dyes with accessible S_0 -> S_1 -> S_2 transitions) and strongly interact with a UV-visible cavity.
集体强光-物质耦合下增强的光学非线性
光学微腔和金属纳米结构已被证明可以显著调节分子系统的动力学和光谱响应。我们提出了一个非线性光学模型的研究,该模型由$N$非谐波多能级系统(如莫尔斯振子)与谐振红外微腔进行集体强耦合组成。我们发现,在实验条件下,由于高质量的极化子共振和相对于自由空间增强的微腔电磁能量密度,微腔中的分子系统的非线性现象可能会显著加剧。当多极化态与裸分子的多光子跃迁共振时,多光子吸收会发生特别大的增强。特别是,我们的模型预测,当Rabi分裂$\Omega_R$近似等于分子非调和位移$2\Delta$时,相对于自由空间,双光子吸收截面增强了几个数量级。我们的结果提供了共振非线性响应增强因子的粗略上界,因为对暗态的松弛进行了现象学处理。值得注意的是,与空腔强耦合的两能级系统的系综(由Tavis-Cummings模型描述)没有显示出这种光学非线性增强,突出了多能级非调和系统提供的丰富现象学。对于与我们的模型具有相同特征的激子系统(例如,具有可访问的S_0 -> S_1 -> S_2跃迁的分子染料)和与紫外可见腔强烈相互作用的激子系统,预计也会得出类似的结论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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