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片上高维纠缠量子态的产生及其相干控制。

On-chip generation of high-dimensional entangled quantum states and their coherent control.

机构信息

Institut National de la Recherche Scientifique - Centre Énergie, Matériaux et Télécommunications (INRS-EMT) 1650 Boulevard Lionel-Boulet, Varennes, Québec J3X 1S2, Canada.

School of Engineering, University of Glasgow, Rankine Building, Oakfield Avenue, Glasgow G12 8LT, UK.

出版信息

Nature. 2017 Jun 28;546(7660):622-626. doi: 10.1038/nature22986.

Abstract

Optical quantum states based on entangled photons are essential for solving questions in fundamental physics and are at the heart of quantum information science. Specifically, the realization of high-dimensional states (D-level quantum systems, that is, qudits, with D > 2) and their control are necessary for fundamental investigations of quantum mechanics, for increasing the sensitivity of quantum imaging schemes, for improving the robustness and key rate of quantum communication protocols, for enabling a richer variety of quantum simulations, and for achieving more efficient and error-tolerant quantum computation. Integrated photonics has recently become a leading platform for the compact, cost-efficient, and stable generation and processing of non-classical optical states. However, so far, integrated entangled quantum sources have been limited to qubits (D = 2). Here we demonstrate on-chip generation of entangled qudit states, where the photons are created in a coherent superposition of multiple high-purity frequency modes. In particular, we confirm the realization of a quantum system with at least one hundred dimensions, formed by two entangled qudits with D = 10. Furthermore, using state-of-the-art, yet off-the-shelf telecommunications components, we introduce a coherent manipulation platform with which to control frequency-entangled states, capable of performing deterministic high-dimensional gate operations. We validate this platform by measuring Bell inequality violations and performing quantum state tomography. Our work enables the generation and processing of high-dimensional quantum states in a single spatial mode.

摘要

基于纠缠光子的光学量子态对于解决基础物理学中的问题至关重要,也是量子信息科学的核心。具体而言,高维态(D 级量子系统,即 qudits,D > 2)的实现及其控制对于量子力学的基础研究、量子成像方案的灵敏度提高、量子通信协议的稳健性和关键速率改善、更丰富的量子模拟实现以及更高效和容错的量子计算都是必要的。集成光子学最近已成为紧凑、经济高效且稳定地产生和处理非经典光学态的主要平台。然而,到目前为止,集成纠缠量子源仅限于量子比特(D = 2)。在这里,我们演示了片上纠缠 qudit 态的产生,其中光子是在多个高纯度频率模式的相干叠加中产生的。特别是,我们证实了由两个纠缠 qudits(D = 10)形成的至少具有一百个维度的量子系统的实现。此外,我们使用最先进的现成电信组件引入了一个相干操控平台,用于控制频率纠缠态,并能够执行确定性高维门操作。我们通过测量贝尔不等式违反和进行量子态层析成像来验证该平台。我们的工作实现了在单个空间模式中生成和处理高维量子态。

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