论文标题
对观察超轻玻色粒暗物质的随机影响
Stochastic effects on observation of ultralight bosonic dark matter
论文作者
论文摘要
超轻的骨颗粒是暗物质(DM)的迷人候选者。由于其数量密度较大,它的表现为我们银河系中的经典波。已经提出了各种方法来搜索波浪状的DM,例如利用干涉重力波检测器的方法。了解DM信号的特征对于从数据中提取DM的性质至关重要。尽管DM信号几乎是单色的,其质量的角度频率,但由于我们的星系光环中DMS的速度分散,幅度和相逐渐变化。应当正确考虑随机振幅和相位,以准确地从数据中限制DM的耦合常数。先前的作品制定了一种在耦合常数上融合随机效应的耦合常数的方法。其中一项作品比较了在测量时间内有和没有随机效应的上限比振幅和相位的变化时间尺度短得多。在本文中,我们将其公式扩展到任意测量时间并评估随机效应。此外,我们研究了深色光子DM的速度依赖性信号,包括不确定的速度。我们证明我们的方法准确地估算了与数值模拟耦合常数上的上限。我们还以半分析的方式估算了未来实验的轴突DM和深色光子DM的耦合常数的预期上限。随机性尤其影响对小质量区域的限制。我们的配方提供了具有随机效应的超轻骨气DM信号的通用处理。
Ultralight bosonic particles are fascinating candidates of dark matter (DM). It behaves as classical waves in our Galaxy due to its large number density. There have been various methods proposed to search for the wave-like DM, such as methods utilizing interferometric gravitational-wave detectors. Understanding the characteristics of DM signals is crucial to extract the properties of DM from data. While the DM signal is nearly monochromatic with the angular frequency of its mass, the amplitude and phase are gradually changing due to the velocity dispersion of DMs in our Galaxy halo. The stochastic amplitude and phase should be properly taken into account to accurately constrain the coupling constant of DM from data. Previous works formulated a method to obtain the upper bound on the coupling constant incorporating the stochastic effects. One of these works compared the upper bound with and without the stochastic effect in a measurement time that is much shorter than the variation time scale of the amplitude and phase. In this paper, we extend their formulation to arbitrary measurement time and evaluate the stochastic effects. Moreover, we investigate the velocity-dependent signal for dark photon DM including an uncertainly of the velocity. We demonstrate that our method accurately estimates the upper bound on the coupling constant with numerical simulations. We also estimate the expected upper bound of the coupling constant of axion DM and dark photon DM from future experiments in a semi-analytic way. The stochasticity especially affects constraints on a small mass region. Our formulation offers a generic treatment of the ultralight bosonic DM signal with the stochastic effect.