Coherent anharmonicity transfer from matter to light in the THz regime

Mauricio Arias, J. Triana, Aldo Delgado, Felipe Herrera
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Abstract

Optical nonlinearities are fundamental in several types of optical information processing protocols. However, the high laser intensities needed for implementing phase nonlinearities using conventional optical materials represent a challenge for nonlinear optics in the few-photon regime. We introduce an infrared cavity quantum electrodynamics (QED) approach for imprinting nonlinear phase shifts on individual THz pulses in reflection setups, conditional on the input power. Power-dependent phase shifts on the order of 0.1 π can be achieved with femtosecond pulses of only a few µW input power. The proposed scheme involves a small number of intersubband quantum well transition dipoles evanescently coupled to the near field of an infrared resonator. The field evolution is nonlinear due to the dynamical transfer of spectral anharmonicity from material dipoles to the infrared vacuum, through an effective dipolar chirping mechanism that transiently detunes the quantum well transitions from the vacuum field, leading to photon blockade. We develop analytical theory that describes the dependence of the imprinted nonlinear phase shift on relevant physical parameters. For a pair of quantum well dipoles, the phase control scheme is shown to be robust with respect to inhomogeneities in the dipole transition frequencies and relaxation rates. Numerical results based on the Lindblad quantum master equation validate the theory in the regime where the material dipoles are populated up to the second excitation manifold. In contrast with conventional QED schemes for phase control that require strong light-matter interaction, the proposed phase nonlinearity works best in weak coupling, increasing the prospects for its experimental realization using current nanophotonic technology.
太赫兹系统中从物质到光的相干非谐波传输
光学非线性是多种光学信息处理协议的基础。然而,使用传统光学材料实现相位非线性所需的高激光强度是对少光子非线性光学的挑战。我们介绍了一种红外腔体量子电动力学(QED)方法,用于在再辐射装置中根据输入功率在单个太赫兹脉冲上印刻非线性相移。输入功率只有几微瓦的飞秒脉冲就能实现 0.1 π 量级的功率相关相移。所提出的方案涉及少量带间量子阱过渡偶极子与红外谐振器的近场耦合。由于光谱非谐波性从材料偶极子动态转移到红外真空,通过一种有效的偶极啁啾机制,量子阱跃迁与真空电场发生瞬时失谐,从而导致光子阻滞,因此电场演化是非线性的。我们建立了分析理论,描述了印记非线性相移对相关物理参数的依赖性。对于一对量子阱偶极子,相位控制方案对偶极子转换频率和弛豫速率的不均匀性具有稳健性。基于林德布拉德量子主方程的数值结果验证了该理论在材料偶极子填充到第二激发流形的情况下的有效性。与需要强光-物质相互作用的传统 QED 相位控制方案相比,所提出的相位非线性在弱耦合情况下效果最佳,从而增加了利用当前纳米光子技术进行实验实现的前景。
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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