用于微波波色子量子信息处理的容错单向无噪声放大技术

Hany Khalifa;Riku Jäntti;Gheorghe Sorin Paraoanu
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摘要

微波量子信息网络需要在有损信道上可靠地传输单光子传播模式。在本文中,我们提出了一种微波无噪声线性放大器(NLA),适用于规避飞行光子在振幅阻尼信道(ADC)中产生的损耗。所提议的模型是通过工程设计一个简单的一维四节点簇状态来构建的。与基于量子剪刀(QS)的传统 NLA 不同,它无需光子数解析探测器就能实现单光子放大。构成器件簇的节点之间的纠缠是通过受控相位门实现的。此外,光子测量由量子非爆破探测器实现,该探测器目前已成为电路量子电动力学工具箱的一部分。我们通过考虑探测低效率和暗计数概率,实际分析了我们设备的性能。我们进一步研究了我们的设备在低功耗量子传感应用和远程密钥生成(SKG)中的潜在用途。具体来说,我们展示了该设备离线准备无损耗资源的能力,以及克服 SKG 无中继约束的能力。在上述应用中,我们比较了我们的设备与 QS-NLA 的性能,并明确强调了我们的设备优于 QS-NLA 的工作条件。我们提出的设备也适用于光领域的应用。
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Fault-Tolerant One-Way Noiseless Amplification for Microwave Bosonic Quantum Information Processing
Microwave quantum information networks require reliable transmission of single-photon propagating modes over lossy channels. In this article, we propose a microwave noiseless linear amplifier (NLA) suitable to circumvent the losses incurred by a flying photon undergoing an amplitude damping channel (ADC). The proposed model is constructed by engineering a simple 1-D four-node cluster state. Contrary to conventional NLAs based on quantum scissors (QS), single-photon amplification is realized without the need for photon number resolving detectors. Entanglement between nodes comprising the device's cluster is achieved by means of a controlled phase gate. Furthermore, photon measurements are implemented by quantum nondemolition detectors, which are currently available as a part of the circuit quantum electrodynamics toolbox. We analyze the performance of our device practically by considering detection inefficiency and dark count probability. We further examine the potential usage of our device in low-power quantum sensing applications and remote secret key generation (SKG). Specifically, we demonstrate the device's ability to prepare loss-free resources offline, and its capacity to overcome the repeaterless bound of SKG. We compare the performance of our device against a QS-NLA for the aforementioned applications, and highlight explicitly the operating conditions under which our device can outperform a QS-NLA. The proposed device is also suitable for applications in the optical domain.
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