An effective formalism for testing extensions to General Relativity with gravitational waves

被引:0
作者
Solomon Endlich
Victor Gorbenko
Junwu Huang
Leonardo Senatore
机构
[1] Stanford University,Stanford Institute for Theoretical Physics
来源
Journal of High Energy Physics | / 2017卷
关键词
Effective Field Theories; Black Holes; Classical Theories of Gravity;
D O I
暂无
中图分类号
学科分类号
摘要
The recent direct observation of gravitational waves (GW) from merging black holes opens up the possibility of exploring the theory of gravity in the strong regime at an unprecedented level. It is therefore interesting to explore which extensions to General Relativity (GR) could be detected. We construct an Effective Field Theory (EFT) satisfying the following requirements. It is testable with GW observations; it is consistent with other experiments, including short distance tests of GR; it agrees with widely accepted principles of physics, such as locality, causality and unitarity; and it does not involve new light degrees of freedom. The most general theory satisfying these requirements corresponds to adding to the GR Lagrangian operators constructed out of powers of the Riemann tensor, suppressed by a scale comparable to the curvature of the observed merging binaries. The presence of these operators modifies the gravitational potential between the compact objects, as well as their effective mass and current quadrupoles, ultimately correcting the waveform of the emitted GW.
引用
收藏
相关论文
共 81 条
[11]  
Yunes N(2008)The Invar tensor package: Differential invariants of Riemann Comput. Phys. Commun. 179 908-undefined
[12]  
Yagi K(1980)QED Vacuum Polarization in a Background Gravitational Field and Its Effect on the Velocity of Photons Phys. Rev. D 22 110-undefined
[13]  
Pretorius F(2017)Numerical binary black hole mergers in dynamical Chern-Simons gravity: Scalar field Phys. Rev. D 96 3084-undefined
[14]  
Dodelson M(2006)An Effective field theory of gravity for extended objects Phys. Rev. D 73 102-undefined
[15]  
Silverstein E(2013)Classical Space-Times from the S Matrix Nucl. Phys. B 877 277-undefined
[16]  
Adams A(2010)Gravitational radiative corrections from effective field theory Phys. Rev. D 81 59-undefined
[17]  
Arkani-Hamed N(2012)Torsion-balance tests of the weak equivalence principle Class. Quant. Grav. 29 22-undefined
[18]  
Dubovsky S(2000)Short range tests of the equivalence principle Phys. Rev. D 61 295-undefined
[19]  
Nicolis A(1982)A new test of general relativity: Gravitational radiation and the binary pulsar PS R 1913+16 Astrophys. J. 253 1-undefined
[20]  
Rattazzi R(1986)The black hole binary A0620-00 Astrophys. J. 308 undefined-undefined