论文标题
Snowmass2021宇宙边界白皮书:基本物理和超越标准模型
Snowmass2021 Cosmic Frontier White Paper: Fundamental Physics and Beyond the Standard Model
论文作者
论文摘要
重力波检测器是探索强场重力的强大工具,尤其是黑洞和中子星。这些紧凑的物体在产生电磁和重力辐射方面非常有效。因此,它们是基本物理学的理想实验室,并且具有巨大的发现潜力。通过第三代地球检测器,空间探测器和脉冲星时阵列对黑洞二进制的检测将提供一般相对论的精美测试。大声的“黄金”事件和极端的质量比率灵感可以通过绘制外部时空几何形状来增强视野的观察证据,告知我们可能的近磨牙修改,并可能揭示了爱因斯坦的重力分解。黑洞自旋分布和连续重力波搜索的测量可以将黑洞变成质量十个或更多数量级的超轻玻色子的有效检测器。对灵感二进制的阶段进行的精确监视可以限制其他传播场的存在,并表征二进制室所处的环境,从而界定局部暗物质密度和特性。紧凑型二进制文件的引力波将在以前难以接近的政权中探讨一般相对论和基本物理学,并让我们能够在当前对宇宙的理解中解决基本问题。
Gravitational wave detectors are formidable tools to explore strong-field gravity, especially black holes and neutron stars. These compact objects are extraordinarily efficient at producing electromagnetic and gravitational radiation. As such, they are ideal laboratories for fundamental physics and have an immense discovery potential. The detection of black hole binaries by third-generation Earth-based detectors, space-based detectors and pulsar timing arrays will provide exquisite tests of general relativity. Loud "golden" events and extreme mass-ratio inspirals can strengthen the observational evidence for horizons by mapping the exterior spacetime geometry, inform us on possible near-horizon modifications, and perhaps reveal a breakdown of Einstein's gravity. Measurements of the black-hole spin distribution and continuous gravitational-wave searches can turn black holes into efficient detectors of ultralight bosons across ten or more orders of magnitude in mass. A precise monitoring of the phase of inspiralling binaries can constrain the existence of additional propagating fields and characterize the environment in which the binaries live, bounding the local dark matter density and properties. Gravitational waves from compact binaries will probe general relativity and fundamental physics in previously inaccessible regimes, and allow us to address fundamental issues in our current understanding of the cosmos.