论文标题

从纳米光子分子中挤压光

Squeezed light from a nanophotonic molecule

论文作者

Zhang, Y., Menotti, M., Tan, K., Vaidya, V. D., Mahler, D. H., Helt, L. G., Zatti, L., Liscidini, M., Morrison, B., Vernon, Z.

论文摘要

光子分子由两个或多个光学谐振器组成,以使每个谐振器的某些模式与另一个谐振器的某些模式耦合。此类结构已用于模拟两级系统,激光以及按需光学存储和检索的行为。耦合的谐振器也已用于集成设备的分散工程,从而提高了它们在非线性光学应用方面的性能。这种集成的非线性结构的精致工程需要开发可扩展的非古典光源来源,以将其部署在量子信息处理系统中。在这项工作中,我们演示了一个光子分子,该光子分子由在集成的纳米光子芯片上组成的两个耦合的微孔谐振器,旨在产生强烈挤压的光,未经不必要的寄生非线性过程的噪声未受污染。通过调整光子分子以选择性夫妇,从而仅杂交不需要的过程中涉及的模式,可以抑制寄生参数荧光。该策略使使用微孔谐振器来有效地产生退化的挤压光:没有它,简单的单谐振器结构就无法避免在没有显着损害泵功率效率的情况下污染非线性噪声,因此仅限于产生弱脱位挤压。我们使用该设备生成8(1)dB的宽带退化片上的片段,直接测量了1.65(1)dB,这是任何纳米光源源的挤压量最大。

Photonic molecules are composed of two or more optical resonators, arranged such that some of the modes of each resonator are coupled to those of the other. Such structures have been used for emulating the behaviour of two-level systems, lasing, and on-demand optical storage and retrieval. Coupled resonators have also been used for dispersion engineering of integrated devices, enhancing their performance for nonlinear optical applications. Delicate engineering of such integrated nonlinear structures is required for developing scalable sources of non-classical light to be deployed in quantum information processing systems. In this work, we demonstrate a photonic molecule composed of two coupled microring resonators on an integrated nanophotonic chip, designed to generate strongly squeezed light uncontaminated by noise from unwanted parasitic nonlinear processes. By tuning the photonic molecule to selectively couple and thus hybridize only the modes involved in the unwanted processes, suppression of parasitic parametric fluorescence is accomplished. This strategy enables the use of microring resonators for the efficient generation of degenerate squeezed light: without it, simple single-resonator structures cannot avoid contamination from nonlinear noise without significantly compromising pump power efficiency, and are thus limited to generating only weak degenerate squeezing. We use this device to generate 8(1) dB of broadband degenerate squeezed light on-chip, with 1.65(1) dB directly measured, which is the largest amount of squeezing yet reported from any nanophotonic source.

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