Topological input-output theory for directional amplification

T. Ramos, J. Garc'ia-Ripoll, D. Porras
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引用次数: 11

Abstract

We present a topological approach to the input-output relations of photonic driven-dissipative lattices acting as directional amplifiers. Our theory relies on a mapping from the optical non-Hermitian coupling matrix to an effective topological insulator Hamiltonian. This mapping is based on the singular value decomposition of non-Hermitian coupling matrices, whose inverse matrix determines the linear input-output response of the system. In topologically non-trivial regimes, the input-output response of the lattice is dominated by singular vectors with zero singular values that are the equivalent of zero-energy states in topological insulators, leading to directional amplification of a coherent input signal. In such topological amplification regime, our theoretical framework allows us to fully characterize the amplification properties of the quantum device such as gain, bandwidth, added noise, and noise-to-signal ratio. We exemplify our ideas in a one-dimensional non-reciprocal photonic lattice, for which we derive fully analytical predictions. We show that the directional amplification is near quantum-limited with a gain growing exponentially with system size, $N$, while the noise-to-signal ratio is suppressed as $1/\sqrt{N}$. This points out to interesting applications of our theory for quantum signal amplification and single-photon detection.
定向放大的拓扑输入输出理论
我们提出了一种拓扑方法来研究作为方向放大器的光子驱动耗散晶格的输入输出关系。我们的理论依赖于从光学非厄米耦合矩阵到有效拓扑绝缘体哈密顿量的映射。该映射基于非厄米耦合矩阵的奇异值分解,其逆矩阵决定了系统的线性输入输出响应。在拓扑非平凡状态下,晶格的输入输出响应由奇异向量控制,奇异值为零,相当于拓扑绝缘体中的零能态,导致相干输入信号的定向放大。在这种拓扑放大制度下,我们的理论框架使我们能够充分表征量子器件的放大特性,如增益、带宽、附加噪声和噪信比。我们在一维非互易光子晶格中举例说明了我们的想法,为此我们得到了完全的分析预测。我们表明,定向放大接近量子限制,增益随系统尺寸呈指数增长,而信噪比被抑制为$1/\sqrt{N}$。这指出了我们的理论在量子信号放大和单光子探测方面的有趣应用。
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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