论文标题

用二进制脉冲星探测大量的标量/矢量场

Probing Massive Scalar/Vector Fields with Binary Pulsars

论文作者

Seymour, Brian C., Yagi, Kent

论文摘要

可以通过观察二元脉冲星进行一般相对性的精确测试。存在大量领域的理论来解释从黑暗能量到强大CP问题的各种现象。现有的Pulsar二进制文件,例如白色矮人型二进制二进制J1738+0333,已被用来在标量偶极子发射上施加严格的边界,并且射程望远镜可能在未来检测到孔子轨道的脉冲星。在本文中,我们研究了通过测量轨道衰减速率,脉冲星二进制文件探测涉及大量标量和矢量场的理论的能力。使用通用框架,我们描述了(a)修饰GR四极辐射的轨道衰减速率的校正,以及(b)巨大场的偶极辐射。然后,我们考虑了三个具体的例子:(i)庞大的布兰斯 - 迪克理论,(ii)与轴的一般相对论,以及(iii)与绑定的暗物质和暗力的一般相对论。最后,我们将J1738的直接观察和对黑孔型二进制的仿真对结合理论参数,例如田间的质量和耦合常数。我们发现对与PSR J1738的绑定暗物质相互作用的新约束,而黑洞型幽门发现可能会进一步改善这些。这样的界限是未来重力波界的补充。关于其他理论,我们发现与以前的脉冲星测量相似的限制,用于大规模的布兰斯 - 迪克理论和轴承。这些结果表明,新的Pulsar二进制室将继续进行更严格的重力测试。

Precision tests of general relativity can be conducted by observing binary pulsars. Theories with massive fields exist to explain a variety of phenomena from dark energy to the strong CP problem. Existing pulsar binaries, such as the white dwarf-pulsar binary J1738+0333, have been used to place stringent bounds on the scalar dipole emission, and radio telescopes may detect a pulsar orbiting a black hole in the future. In this paper, we study the ability of pulsar binaries to probe theories involving massive scalar and vector fields through the measurement of the orbital decay rate. With a generic framework, we describe corrections to orbital decay rate due to (a) modification of GR quadrupolar radiation and (b) dipolar radiation of a massive field. We then consider three concrete examples: (i) massive Brans-Dicke theory, (ii) general relativity with axions, and (iii) general relativity with bound dark matter and a dark force. Finally, we apply direct observations of J1738 and simulations of a black hole-pulsar binary to bound theory parameters such as field's mass and coupling constant. We find new constraints on bound dark matter interactions with PSR J1738, and a black hole-pulsar discovery would likely improve these further. Such bounds are complementary to future gravitational-wave bounds. Regarding other theories, we find similar constraints to previous pulsar measurements for massive Brans-Dicke theory and axions. These results show that new pulsar binaries will continue to allow for more stringent tests of gravity.

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