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利用超导量子比特寻找暗物质

Searching for Dark Matter with a Superconducting Qubit.

作者信息

Dixit Akash V, Chakram Srivatsan, He Kevin, Agrawal Ankur, Naik Ravi K, Schuster David I, Chou Aaron

机构信息

James Franck Institute, University of Chicago, Chicago, Illinois 60637, USA.

Department of Physics, University of Chicago, Chicago, Illinois 60637, USA.

出版信息

Phys Rev Lett. 2021 Apr 9;126(14):141302. doi: 10.1103/PhysRevLett.126.141302.

Abstract

Detection mechanisms for low mass bosonic dark matter candidates, such as the axion or hidden photon, leverage potential interactions with electromagnetic fields, whereby the dark matter (of unknown mass) on rare occasion converts into a single photon. Current dark matter searches operating at microwave frequencies use a resonant cavity to coherently accumulate the field sourced by the dark matter and a near standard quantum limited (SQL) linear amplifier to read out the cavity signal. To further increase sensitivity to the dark matter signal, sub-SQL detection techniques are required. Here we report the development of a novel microwave photon counting technique and a new exclusion limit on hidden photon dark matter. We operate a superconducting qubit to make repeated quantum nondemolition measurements of cavity photons and apply a hidden Markov model analysis to reduce the noise to 15.7 dB below the quantum limit, with overall detector performance limited by a residual background of real photons. With the present device, we perform a hidden photon search and constrain the kinetic mixing angle to ε≤1.68×10^{-15} in a band around 6.011 GHz (24.86  μeV) with an integration time of 8.33 s. This demonstrated noise reduction technique enables future dark matter searches to be sped up by a factor of 1,300. By coupling a qubit to an arbitrary quantum sensor, more general sub-SQL metrology is possible with the techniques presented in this Letter.

摘要

对于低质量玻色子暗物质候选者(如轴子或隐藏光子)的探测机制,利用了与电磁场的潜在相互作用,即未知质量的暗物质在极少数情况下会转化为单个光子。当前在微波频率下运行的暗物质搜索实验使用谐振腔来相干积累暗物质产生的场,并使用接近标准量子极限(SQL)的线性放大器来读取腔信号。为了进一步提高对暗物质信号的灵敏度,需要亚SQL探测技术。在此,我们报告了一种新型微波光子计数技术的开发以及对隐藏光子暗物质的新排除极限。我们操作一个超导量子比特对腔光子进行重复的量子非破坏测量,并应用隐藏马尔可夫模型分析将噪声降低到比量子极限低15.7分贝,整体探测器性能受真实光子的残余背景限制。利用当前设备,我们进行了隐藏光子搜索,并在6.011吉赫兹(24.86微电子伏特)附近的频段内,通过8.33秒的积分时间,将动力学混合角限制在ε≤1.68×10⁻¹⁵。这种已证明的降噪技术能使未来的暗物质搜索速度提高1300倍。通过将量子比特与任意量子传感器耦合,利用本论文中提出的技术可以实现更通用的亚SQL计量。

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