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Extremely broadband, on-chip optical nonreciprocity enabled by mimicking nonlinear anti-adiabatic quantum jumps near exceptional points

机译:通过模拟异常点附近的非线性抗绝热量子跃迁实现极宽的片上光学互不干扰

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Time-asymmetric state-evolution properties while encircling an exceptional point are presently of great interest in search of new principles for controlling atomic and optical systems. Here, we show that encircling-an-exceptional-point interactions that are essentially reciprocal in the linear interaction regime make a plausible nonlinear integrated optical device architecture highly nonreciprocal over an extremely broad spectrum. In the proposed strategy, we describe an experimentally realizable coupled-waveguide structure that supports an encircling-an-exceptional-point parametric evolution under the influence of a gain saturation nonlinearity. Using an intuitive time-dependent Hamiltonian and rigorous numerical computations, we demonstrate strictly nonreciprocal optical transmission with a forward-to-backward transmission ratio exceeding 10?dB and high forward transmission efficiency (~100%) persisting over an extremely broad bandwidth approaching 100?THz. This predicted performance strongly encourages experimental realization of the proposed concept to establish a practical on-chip optical nonreciprocal element for ultra-short laser pulses and broadband high-density optical signal processing.
机译:围绕特殊点的时间非对称状态演化特性目前对于寻找用于控制原子和光学系统的新原理非常感兴趣。在这里,我们表明,在线性相互作用机制中,本质上是互易的环绕一个奇点相互作用,使得合理的非线性集成光学器件架构在极宽的光谱范围内高度互易。在提出的策略中,我们描述了一种在实验上可实现的耦合波导结构,该结构在增益饱和非线性的影响下支持一个环绕异常点的参数演化。通过使用直观的时间相关哈密顿量和严格的数值计算,我们证明了严格的不可逆光传输,其前后传输比超过10?dB,并且在接近100?的超宽带宽上仍具有很高的前向传输效率(〜100%)。太赫兹这种预期的性能极大地鼓励了所提议概念的实验实现,从而为超短激光脉冲和宽带高密度光信号处理建立了实用的片上光学不可逆元件。

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