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Quantum Coherent Nonlinear Feedback With Applications to Quantum Optics on Chip

机译:量子相干非线性反馈及其在片上量子光学中的应用

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In the control of classical mechanical systems, feedback has been applied to the generation of desired nonlinear dynamics, e.g., in chaos control. However, how much this can be done is still an open problem in quantum mechanical systems. This paper presents a scheme of enhancing nonlinear quantum effects via the recently developed coherent feedback techniques, which can be shown to outperform the measurement-based quantum feedback scheme that can only generate pseudo-nonlinear quantum effects. Apart from the advantages of our method, an unsolved problem is that the decoherence rate is also increased by the quantum amplifier, which may be solved by introducing, e.g., an integral device or an nonlinear quantum amplifier. Such a proposal is demonstrated via two application examples in quantum optics on chip. In the first example, we show that nonlinear Kerr effect can be generated and amplified to be comparable with the linear effect in a transmission line resonator (TLR). In the second example, we show that by tuning the gains of the quantum amplifiers in a TLR coherent feedback network, the resulting nonlinear effects can generate and manipulate non-Gaussian “light” (microwave field) which exhibits fully quantum sub-Poisson photoncount statistics and photon antibunching phenomenon. The scheme opens up broad applications in engineering nonlinear quantum optics on chip. Particularly, in this study, the concept of feedback nonlinearization which is very useful for quantum feedback control systems is introduced. This is in contrast to the feedback linearization concept used in classical nonlinear feedback control systems.
机译:在经典机械系统的控制中,例如在混沌控制中,已经将反馈应用于期望的非线性动力学的生成。然而,在量子力学系统中可以做到多少仍然是一个悬而未决的问题。本文提出了一种通过最近开发的相干反馈技术来增强非线性量子效应的方案,该方案可以证明其性能优于仅产生伪非线性量子效应的基于测量的量子反馈方案。除了我们方法的优点之外,一个未解决的问题是量子放大器还提高了退相干率,这可以通过引入例如集成器件或非线性量子放大器来解决。通过两个在片上量子光学中的应用实例来证明这样的建议。在第一个示例中,我们表明可以产生非线性Kerr效应并将其放大,从而与传输线谐振器(TLR)中的线性效应相当。在第二个示例中,我们表明,通过调整TLR相干反馈网络中量子放大器的增益,所产生的非线性效应可以生成和操纵非高斯“光”(微波场),该非高斯“光”具有完全的量子亚泊松光子计数统计量和光子反聚束现象。该方案在芯片上工程非线性量子光学方面开辟了广泛的应用。特别是,在这项研究中,引入了对于量子反馈控制系统非常有用的反馈非线性化的概念。这与经典非线性反馈控制系统中使用的反馈线性化概念相反。

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