Searching for dark particles with quantum optics

R. Harnik
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Abstract

: We propose a way to use optical tools from quantum imaging and quantum communication to search for physics beyond the standard model. Spontaneous parametric down-conversion (SPDC) is a commonly used source of entangled photons in which pump photons convert to a signal-idler pair. We propose to search for “dark-SPDC” (dSPDC) events in which a new dark-sector particle replaces the idler. Though it does not interact, the presence of a dark particle can be inferred by the properties of the signal photon. Examples of dark states include axionlike particles and dark photons. We show that the presence of an optical medium opens the phase space of the down-conversion process, or decay, which would be forbidden in a vacuum. Search schemes are proposed that employ optical imaging and/or spectroscopy of the signal photons. The signal rates in our proposal scales with the second power of the small coupling to new physics, as opposed to light-shining-through-wall experiments, the signal of which scales with coupling to the fourth power. We analyze the characteristics of the optical media needed to enhance dSPDC and estimate the rate. We propose a way to use optical tools from quantum imaging and quantum communication to search for physics beyond the standard model. Spontaneous parametric down-conversion (SPDC) is a commonly used source of entangled photons in which pump photons convert to a signal-idler pair. We propose to search for “dark-SPDC” (dSPDC) events in which a new dark-sector particle replaces the idler. Though it does not interact, the presence of a dark particle can be inferred by the properties of the signal photon. Examples of dark states include axionlike particles and dark photons. We show that the presence of an optical medium opens the phase space of the down-conversion process, or decay, which would be forbidden in a vacuum. Search schemes are proposed that employ optical imaging and/or spectroscopy of the signal photons. The signal rates in our proposal scales with the second power of the small coupling to new physics, as opposed to light-shining-through-wall experiments, the signal of which scales with coupling to the fourth power. We analyze the characteristics of the optical media needed to enhance dSPDC and estimate the rate.
用量子光学寻找暗粒子
我们提出了一种利用量子成像和量子通信的光学工具来寻找标准模型之外的物理的方法。自发参数下转换(SPDC)是一种常用的纠缠光子源,其中泵浦光子转换为信号空闲对。我们建议寻找“暗- spdc”(dSPDC)事件,其中新的暗扇区粒子取代了空闲粒子。虽然它不相互作用,但暗粒子的存在可以通过信号光子的性质推断出来。暗态的例子包括类轴子粒子和暗光子。我们表明,光介质的存在打开了下转换过程的相空间,或衰减,这在真空中是被禁止的。提出了利用信号光子的光学成像和/或光谱学的搜索方案。在我们的建议中,信号率与新物理的小耦合的第二次方相对应,而与光穿墙实验相反,其信号与耦合的第四次方相对应。分析了提高dSPDC所需光介质的特性,并对速率进行了估计。我们提出了一种利用量子成像和量子通信的光学工具来寻找超越标准模型的物理的方法。自发参数下转换(SPDC)是一种常用的纠缠光子源,其中泵浦光子转换为信号空闲对。我们建议寻找“暗- spdc”(dSPDC)事件,其中新的暗扇区粒子取代了空闲粒子。虽然它不相互作用,但暗粒子的存在可以通过信号光子的性质推断出来。暗态的例子包括类轴子粒子和暗光子。我们表明,光介质的存在打开了下转换过程的相空间,或衰减,这在真空中是被禁止的。提出了利用信号光子的光学成像和/或光谱学的搜索方案。在我们的建议中,信号率与新物理的小耦合的第二次方相对应,而与光穿墙实验相反,其信号与耦合的第四次方相对应。分析了提高dSPDC所需光介质的特性,并对速率进行了估计。
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