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Gravitational wave lensing beyond general relativity: Birefringence, echoes, and shadows

机译:超越一般相对性的引力波镜头:双折射,回声和阴影

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Gravitational waves (GW), as light, are gravitationally lensed by intervening matter, deflecting their trajectories, delaying their arrival and occasionally producing multiple images. In theories beyond general relativity, new gravitational degrees of freedom add an extra layer of complexity and richness to GW lensing. We develop a formalism to compute GW propagation beyond general relativity over general space-times, including kinetic interactions with new fields. Our framework relies on identifying the dynamical propagation eigenstates (linear combinations of the metric and additional fields) at leading order in a short-wave expansion. We determine these eigenstates and the conditions under which they acquire a different propagation speed around a lens. Differences in speed between eigenstates cause birefringence phenomena , including time delays between the metric polarizations (orthogonal superpositions of h + , h × ) observable without an electromagnetic counterpart. In particular, GW echoes are produced when the accumulated delay is larger than the signal’s duration, while shorter time delays produce a scrambling of the waveform. We also describe the formation of GW shadows as nonpropagating metric components are sourced by the background of the additional fields around the lens. As an example, we apply our methodology to quartic Horndeski theories with Vainshtein screening and show that birefringence effects probe a region of the parameter space complementary to the constraints from the multimessenger event GW170817. In the future, identified strongly lensed GWs and binary black holes merging near dense environments, such as active galactic nuclei, will fulfill the potential of these novel tests of gravity.
机译:作为光的引力波(GW)通过中间物质,偏转它们的轨迹,延迟其到达以及偶尔产生多个图像而被引力透镜。在超越一般相对性的理论中,新的引力自由度增加了额外的复杂性和丰富的GW镜头。我们开发一种形式主义来计算超越一般空间时间超越的GW传播,包括与新领域的动力学交互。我们的框架依赖于在短波扩展中以前导顺序识别动态传播特征(指标和附加领域的线性组合)。我们确定这些特征符和它们在镜片周围获得不同传播速度的条件。特征栓塞之间的速度差异导致双折射现象,包括在没有电磁对应的没有电磁对应物的情况下观察到的度量偏振(H +,H×)之间的时间延迟。特别地,当累积延迟大于信号持续时间时产生 GW回波,而较短的时间延迟产生波形的扰扰。我们还描述了 GW阴影的形成,因为在镜头周围的附加领域的背景是由镜头的背景来源的。例如,我们使用VainShtein筛选将我们的方法应用于四分之一的Horndeski理论,并显示双折射效应探测与Multimessenger事件GW170817的约束互补的参数空间区域。在未来,确定了镜头的强烈镜头的GW和二元黑洞,靠近密集的环境,例如活跃的银基,将满足这些新颖的重力测试的潜力。

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