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非线性波导阵列中空间纠缠的可调谐生成

Tunable Generation of Spatial Entanglement in Nonlinear Waveguide Arrays.

作者信息

Raymond A, Zecchetto A, Palomo J, Morassi M, Lemaître A, Raineri F, Amanti M I, Ducci S, Baboux F

机构信息

<a href="https://ror.org/05f82e368">Université Paris Cité</a>, CNRS, Laboratoire Matériaux et Phénomènes Quantiques, 75013 Paris, France.

<a href="https://ror.org/05a0dhs15">ENS-PSL</a>, Université PSL, CNRS, Sorbonne Université, Laboratoire de Physique de l'Ecole Normale Supérieure, 75005 Paris, France.

出版信息

Phys Rev Lett. 2024 Dec 6;133(23):233602. doi: 10.1103/PhysRevLett.133.233602.

DOI:10.1103/PhysRevLett.133.233602
PMID:39714657
Abstract

Harnessing high-dimensional entangled states of light presents a frontier for advancing quantum information technologies, from fundamental tests of quantum mechanics to enhanced computation and communication protocols. In this context, the spatial degree of freedom stands out as particularly suited for on-chip integration. But while traditional demonstrations produce and manipulate path-entangled states sequentially with discrete optical elements, continuously coupled nonlinear waveguide systems offer a promising alternative where photons can be generated and interfere along the entire propagation length, unveiling novel capabilities within a reduced footprint. Here we exploit this concept to implement a compact and reconfigurable source of path-entangled photon pairs based on parametric down-conversion in semiconductor nonlinear waveguide arrays. We use a double-pump configuration to engineer the output quantum state and implement various types of spatial correlations, exploiting a quantum interference effect between the biphoton state generated in each pumped waveguide. This demonstration, at room temperature and telecom wavelength, illustrates the potential of continuously coupled systems as a promising alternative to discrete multicomponent quantum circuits for leveraging the high-dimensional spatial degree of freedom of photons.

摘要

利用光的高维纠缠态是推进量子信息技术的前沿领域,从量子力学的基础测试到增强的计算和通信协议。在这种背景下,空间自由度特别适合于片上集成。但是,虽然传统演示使用离散光学元件顺序地产生和操纵路径纠缠态,但连续耦合的非线性波导系统提供了一种有前途的替代方案,其中光子可以在整个传播长度上产生并干涉,在减小的尺寸内展现出新的能力。在这里,我们利用这一概念,基于半导体非线性波导阵列中的参量下转换,实现了一种紧凑且可重构的路径纠缠光子对源。我们使用双泵浦配置来设计输出量子态并实现各种类型的空间相关性,利用每个泵浦波导中产生的双光子态之间的量子干涉效应。在室温及电信波长下的这一演示,说明了连续耦合系统作为离散多分量量子电路的一种有前途的替代方案,用于利用光子的高维空间自由度的潜力。

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