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利用室温非制冷有损微波波导进行高保真量子信息传输。

High-fidelity quantum information transmission using a room-temperature nonrefrigerated lossy microwave waveguide.

作者信息

Qasymeh Montasir, Eleuch Hichem

机构信息

Electrical and Computer Engineering Department, Abu Dhabi University, 59911, Abu Dhabi, United Arab Emirates.

Department of Applied Physics and Astronomy, University of Sharjah, Sharjah, United Arab Emirates.

出版信息

Sci Rep. 2022 Sep 29;12(1):16352. doi: 10.1038/s41598-022-20733-3.

DOI:10.1038/s41598-022-20733-3
PMID:36175489
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9522659/
Abstract

Quantum microwave transmission is key to realizing modular superconducting quantum computers and distributed quantum networks. A large number of incoherent photons are thermally generated within the microwave frequency spectrum. The closeness of the transmitted quantum state to the source-generated quantum state at the input of the transmission link (measured by the transmission fidelity) degrades due to the presence of the incoherent photons. Hence, high-fidelity quantum microwave transmission has long been considered to be infeasible without refrigeration. In this study, we propose a novel method for high-fidelity quantum microwave transmission using a room-temperature lossy waveguide. The proposed scheme consists of connecting two cryogenic nodes (i.e., a transmitter and a receiver) by the room-temperature lossy microwave waveguide. First, cryogenic preamplification is implemented prior to transmission. Second, at the receiver side, a cryogenic loop antenna is placed inside the output port of the waveguide and coupled to an LC harmonic oscillator located outside the waveguide. The loop antenna converts quantum microwave fields to a quantum voltage across the coupled LC harmonic oscillator. Noise photons are induced across the LC oscillator including the source generated noise, the preamplification noise, the thermal occupation of the waveguide, and the fluctuation-dissipation noise. The loop antenna detector at the receiver is designed to extensively suppress the induced photons across the LC oscillator. The signal transmittance is maintained intact by providing significant preamplification gain. Our calculations show that high-fidelity quantum transmission (i.e., more than [Formula: see text]) is realized based on the proposed scheme for transmission distances reaching 100 m.

摘要

量子微波传输是实现模块化超导量子计算机和分布式量子网络的关键。在微波频谱内会热产生大量非相干光子。由于非相干光子的存在,传输链路输入端的传输量子态与源产生的量子态的接近程度(由传输保真度衡量)会降低。因此,长期以来人们一直认为,不进行制冷就无法实现高保真量子微波传输。在本研究中,我们提出了一种使用室温有损耗波导进行高保真量子微波传输的新方法。所提出的方案包括通过室温有损耗微波波导连接两个低温节点(即一个发射器和一个接收器)。首先,在传输之前进行低温前置放大。其次,在接收器端,将一个低温环形天线放置在波导的输出端口内,并耦合到位于波导外部的一个LC谐波振荡器。环形天线将量子微波场转换为耦合LC谐波振荡器两端的量子电压。包括源产生的噪声、前置放大噪声、波导的热占据以及涨落耗散噪声在内的噪声光子会在LC振荡器两端感应产生。接收器处的环形天线探测器旨在广泛抑制LC振荡器两端感应产生的光子。通过提供显著的前置放大增益来保持信号透射率不变。我们的计算表明,基于所提出的方案,对于传输距离达到100米的情况,可以实现高保真量子传输(即大于[公式:见原文])。

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2
Characterizing cryogenic amplifiers with a matched temperature-variable noise source.使用匹配的温度可变噪声源表征低温放大器。
Rev Sci Instrum. 2021 Mar 1;92(3):034708. doi: 10.1063/5.0028951.
3
Deterministic multi-qubit entanglement in a quantum network.量子网络中的确定性多量子位纠缠。
Nature. 2021 Feb;590(7847):571-575. doi: 10.1038/s41586-021-03288-7. Epub 2021 Feb 24.
4
A quantum-logic gate between distant quantum-network modules.远距离量子网络模块之间的量子逻辑门。
Science. 2021 Feb 5;371(6529):614-617. doi: 10.1126/science.abe3150.
5
Microwave Quantum Link between Superconducting Circuits Housed in Spatially Separated Cryogenic Systems.位于空间分离的低温系统中的超导电路之间的微波量子链路。
Phys Rev Lett. 2020 Dec 31;125(26):260502. doi: 10.1103/PhysRevLett.125.260502.
6
Superconducting qubit to optical photon transduction.超导量子比特到光光子的转换。
Nature. 2020 Dec;588(7839):599-603. doi: 10.1038/s41586-020-3038-6. Epub 2020 Dec 23.
7
Hybrid two-mode squeezing of microwave and optical fields using optically pumped graphene layers.利用光泵浦石墨烯层实现微波与光场的混合双模压缩
Sci Rep. 2020 Oct 7;10(1):16676. doi: 10.1038/s41598-020-73363-y.
8
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Nat Commun. 2020 Jun 29;11(1):3266. doi: 10.1038/s41467-020-16996-x.
9
High-Rate, High-Fidelity Entanglement of Qubits Across an Elementary Quantum Network.通过基本量子网络实现量子比特的高速、高保真纠缠。
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10
Quantum supremacy using a programmable superconducting processor.用量子计算优越性使用可编程超导处理器。
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