论文标题

深色光子超沉载:电动力学和多通讯信号

Dark photon superradiance: Electrodynamics and multimessenger signals

论文作者

Siemonsen, Nils, Mondino, Cristina, Egana-Ugrinovic, Daniel, Huang, Junwu, Baryakhtar, Masha, East, William E.

论文摘要

我们研究了动力学混合的深色光子云的电动力学,该云通过旋转黑洞围绕的超高形成,并设计策略以搜索所得的多中文器信号。深色光子超负云云提供了一个旋转的深色电磁场,该电磁场通过动力学混合诱导旋转的可见电磁场。进入该磁场的标准模型带电粒子启动了​​粒子产生的瞬态相位,该粒子产生的瞬时阶段在云中填充血浆,并导致与脉冲星磁层共享定性特征的系统。我们使用适用于高度磁化等离子体的电阻磁性水力动力学方法研究深光子云的电动力学,并根据脉冲星磁层的模拟来适应技术。我们将湍流磁场重新连接确定为耗散和电磁发射的主要来源,并计算出太阳能黑色孔周围的云的峰值光度,以至于$ 10^{43} $ erg/s,用于开放的深色光子参数空间。预计该发射具有显着的X射线成分,并且可能是周期性的,并由深色光子质量设定。亮度与宇宙中最明亮的X射线源相媲美,可以在现有望远镜的远距离进行数百个MPC的搜索。我们讨论观察策略,包括太阳能黑洞合并的靶向电磁随访以及针对异常脉冲星的靶向连续重力波搜索。

We study the electrodynamics of a kinetically mixed dark photon cloud that forms through superradiance around a spinning black hole, and design strategies to search for the resulting multimessenger signals. A dark photon superradiance cloud sources a rotating dark electromagnetic field which, through kinetic mixing, induces a rotating visible electromagnetic field. Standard model charged particles entering this field initiate a transient phase of particle production that populates a plasma inside the cloud and leads to a system which shares qualitative features with a pulsar magnetosphere. We study the electrodynamics of the dark photon cloud with resistive magnetohydrodynamics methods applicable to highly magnetized plasma, adapting techniques from simulations of pulsar magnetospheres. We identify turbulent magnetic field reconnection as the main source of dissipation and electromagnetic emission, and compute the peak luminosity from clouds around solar-mass black holes to be as large as $10^{43}$ erg/s for open dark photon parameter space. The emission is expected to have a significant X-ray component and is potentially periodic, with period set by the dark photon mass. The luminosity is comparable to the brightest X-ray sources in the Universe, allowing for searches at distances of up to hundreds of Mpc with existing telescopes. We discuss observational strategies, including targeted electromagnetic follow-ups of solar-mass black hole mergers and targeted continuous gravitational wave searches of anomalous pulsars.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源