自旋光学量子计算架构

IF 5.1 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Quantum Pub Date : 2024-07-24 DOI:10.22331/q-2024-07-24-1423
Grégoire de Gliniasty, Paul Hilaire, Pierre-Emmanuel Emeriau, Stephen C. Wein, Alexia Salavrakos, Shane Mansfield
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引用次数: 0

摘要

我们介绍了一种为容错量子计算而设计的适应性强的模块化混合架构。它结合了量子发射器和线性光纠缠门,充分利用了基于物质和基于光子方法的优势。该架构的一个主要特点是其实用性,其基础是利用经过实验验证的光学元件。我们的框架可以执行任何量子纠错码,尤其是通过远距离光链路利用内置的非本地连接,保持低密度奇偶校验码的可扩展性。为了衡量其效率,我们使用一个物理误差模型对该架构进行了评估。该架构的损耗容限与现有的全光子架构相当,但无需复杂的线性光资源状态生成模块,而传统的线性光资源状态生成模块则依赖于资源密集型的多路复用。该架构的多功能性还为进一步提高性能标准提供了未知的途径。
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A Spin-Optical Quantum Computing Architecture
We introduce an adaptable and modular hybrid architecture designed for fault-tolerant quantum computing. It combines quantum emitters and linear-optical entangling gates to leverage the strength of both matter-based and photonic-based approaches. A key feature of the architecture is its practicality, grounded in the utilisation of experimentally proven optical components. Our framework enables the execution of any quantum error correcting code, but in particular maintains scalability for low-density parity check codes by exploiting built-in non-local connectivity through distant optical links. To gauge its efficiency, we evaluated the architecture using a physically motivated error model. It exhibits loss tolerance comparable to existing all-photonic architecture but without the need for intricate linear-optical resource-state-generation modules that conventionally rely on resource-intensive multiplexing. The versatility of the architecture also offers uncharted avenues for further advancing performance standards.
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来源期刊
Quantum
Quantum Physics and Astronomy-Physics and Astronomy (miscellaneous)
CiteScore
9.20
自引率
10.90%
发文量
241
审稿时长
16 weeks
期刊介绍: Quantum is an open-access peer-reviewed journal for quantum science and related fields. Quantum is non-profit and community-run: an effort by researchers and for researchers to make science more open and publishing more transparent and efficient.
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