Wanjura Clara C, Brunelli Matteo, Nunnenkamp Andreas
Cavendish Laboratory, University of Cambridge, Cambridge, CB3 0HE, UK.
Nat Commun. 2020 Jun 19;11(1):3149. doi: 10.1038/s41467-020-16863-9.
Directional amplification, in which signals are selectively amplified depending on their propagation direction, has attracted much attention as key resource for applications, including quantum information processing. Recently, several, physically very different, directional amplifiers have been proposed and realized in the lab. In this work, we present a unifying framework based on topology to understand non-reciprocity and directional amplification in driven-dissipative cavity arrays. Specifically, we unveil a one-to-one correspondence between a non-zero topological invariant defined on the spectrum of the dynamic matrix and regimes of directional amplification, in which the end-to-end gain grows exponentially with the number of cavities. We compute analytically the scattering matrix, the gain and reverse gain, showing their explicit dependence on the value of the topological invariant. Parameter regimes achieving directional amplification can be elegantly obtained from a topological 'phase diagram', which provides a guiding principle for the design of both phase-preserving and phase-sensitive multimode directional amplifiers.
定向放大,即信号根据其传播方向被选择性放大,作为包括量子信息处理在内的应用的关键资源,已引起广泛关注。最近,几种物理原理截然不同的定向放大器已被提出并在实验室中实现。在这项工作中,我们提出了一个基于拓扑的统一框架,以理解驱动耗散腔阵列中的非互易性和定向放大。具体而言,我们揭示了在动态矩阵频谱上定义的非零拓扑不变量与定向放大区域之间的一一对应关系,其中端到端增益随腔的数量呈指数增长。我们通过解析计算散射矩阵、增益和反向增益,展示了它们对拓扑不变量值的明确依赖关系。实现定向放大的参数区域可以从拓扑“相图”中优雅地获得,该相图为保相和相敏多模定向放大器的设计提供了指导原则。