Scinovex
article Open AccessTop 10% cited

Effective field theory of gravity for extended objects

Walter D. GoldbergerIra Z. Rothstein

Abstract

Using effective field theory (EFT) methods we present a Lagrangian formalism which describes the dynamics of nonrelativistic extended objects coupled to gravity. The formalism is relevant to understanding the gravitational radiation power spectra emitted by binary star systems, an important class of candidate signals for gravitational wave observatories such as LIGO or VIRGO. The EFT allows for a clean separation of the three relevant scales: ${r}_{s}$, the size of the compact objects, $r$, the orbital radius, and $r/v$, the wavelength of the physical radiation (where the velocity $v$ is the expansion parameter). In the EFT, radiation is systematically included in the $v$ expansion without the need to separate integrals into near zones and radiation zones. Using the EFT, we show that the renormalization of ultraviolet divergences which arise at ${v}^{6}$ in post-Newtonian (PN) calculations requires the presence of two nonminimal worldline gravitational couplings linear in the Ricci curvature. However, these operators can be removed by a redefinition of the metric tensor, so that the divergences arising at ${v}^{6}$ have no physically observable effect. Because in the EFT finite size features are encoded in the coefficients of nonminimal couplings, this implies a simple proof of the decoupling of internal structure for spinless objects to at least order ${v}^{6}$. Neglecting absorptive effects, we find that the power counting rules of the EFT indicate that the next set of short distance operators, which are quadratic in the curvature and are associated with tidal deformations, does not play a role until order ${v}^{10}$. These operators, which encapsulate finite size properties of the sources, have coefficients that can be fixed by a matching calculation. By including the most general set of such operators, the EFT allows one to work within a point-particle theory to arbitrary orders in $v$.

Pulsars and Gravitational Waves ResearchCosmology and Gravitation TheoriesBlack Holes and Theoretical PhysicsPhysicsGravitational waveRenormalizationEffective field theoryObservableGravitationCurvatureTheoretical physicsClassical mechanicsMathematical physics
Citations
699
FWCI
12.92
field-weighted impact
References
93
Percentile
99%
vs. same field & year
Citations per year
Cited by
Cosmological non-linearities as an effective fluid
Journal of Cosmology and Astroparticle Physics · 2012 · 602 citations
Relativistic tidal properties of neutron stars
Physical review. D. Particles, fields, gravitation, and cosmology/Physical review. D, Particles, fields, gravitation, and cosmology · 2009 · 825 citations
Black holes, gravitational waves and fundamental physics: a roadmap
Classical and Quantum Gravity · 2019 · 718 citations
Testing general relativity with present and future astrophysical observations
Classical and Quantum Gravity · 2015 · 1,413 citations
References
4D gravity on a brane in 5D Minkowski space
Physics Letters B · 2000 · 3,164 citations
The Gravitational Equations and the Problem of Motion
Annals of Mathematics · 1938 · 942 citations
An effective field theory for heavy quarks at low energies
Physics Letters B · 1990 · 1,136 citations
Ghost Condensation and a Consistent IR Modification of Gravity
Journal of High Energy Physics · 2004 · 836 citations
<i>An Introduction to Quantum Field Theory</i>
Physics Today · 1996 · 2,233 citations
Weak transition form factors between heavy mesons
Physics Letters B · 1990 · 1,233 citations
The background field method beyond one loop
Nuclear Physics B · 1981 · 1,140 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.