Gravity Exploration Institute, Cardiff University, Cardiff, UK.
Max Planck Institute for Gravitational Physics and Leibniz University Hannover, Hannover, Germany.
Nature. 2021 Dec;600(7889):424-428. doi: 10.1038/s41586-021-04031-y. Epub 2021 Dec 15.
The nature of dark matter remains unknown to date, although several candidate particles are being considered in a dynamically changing research landscape. Scalar field dark matter is a prominent option that is being explored with precision instruments, such as atomic clocks and optical cavities. Here we describe a direct search for scalar field dark matter using a gravitational-wave detector, which operates beyond the quantum shot-noise limit. We set new upper limits on the coupling constants of scalar field dark matter as a function of its mass, by excluding the presence of signals that would be produced through the direct coupling of this dark matter to the beam splitter of the GEO600 interferometer. These constraints improve on bounds from previous direct searches by more than six orders of magnitude and are, in some cases, more stringent than limits obtained in tests of the equivalence principle by up to four orders of magnitude. Our work demonstrates that scalar field dark matter can be investigated or constrained with direct searches using gravitational-wave detectors and highlights the potential of quantum-enhanced interferometry for dark matter detection.
暗物质的本质迄今仍不清楚,尽管在不断变化的研究领域中,几种候选粒子正在被考虑。标量场暗物质是一个备受关注的选项,正在通过原子钟和光学腔等精密仪器进行探索。在这里,我们描述了一种使用引力波探测器进行的标量场暗物质的直接搜索,该探测器的工作原理超越了量子散粒噪声极限。我们通过排除由于这种暗物质与 GEO600 干涉仪分束器的直接耦合而产生的信号的存在,将标量场暗物质的耦合常数的上限设置为其质量的函数。这些限制条件比以前的直接搜索的限制条件提高了六个数量级以上,在某些情况下,比等价原理检验中获得的限制条件提高了四个数量级以上。我们的工作表明,引力波探测器可以用于研究或限制标量场暗物质,并且突出了量子增强干涉测量在暗物质探测方面的潜力。