Constraining Parity Violation in Gravity with Measurements of Neutron-Star Moments of Inertia
arXiv:0912.2736 · doi:10.1103/PhysRevD.81.064020
Abstract
Neutron stars are sensitive laboratories for testing general relativity, especially when considering deviations where velocities are relativistic and gravitational fields are strong. One such deviation is described by dynamical, Chern-Simons modified gravity, where the Einstein-Hilbert action is modified through the addition of the gravitational parity-violating Pontryagin density coupled to a field. This four-dimensional effective theory arises naturally both in perturbative and non-perturbative string theory, loop quantum gravity, and generic effective field theory expansions. We calculate here Chern-Simons modifications to the properties and gravitational fields of slowly spinning neutron stars. We find that the Chern-Simons correction affects only the gravitomagnetic sector of the metric to leading order, thus introducing modifications to the moment of inertia but not to the mass-radius relation. We show that an observational determination of the moment of inertia to an accuracy of 10%, as is expected from near-future observations of the double pulsar, will place a constraint on the Chern-Simons coupling constant of ξ^{1/4} < 5 km, which is at least three-orders of magnitude stronger than the previous strongest bound.
14 pages, 6 figures, replaced with version accepted for publication in Phys. Rev. D
References in corpus (34)
- Quantum Gravity at a Lifshitz Point
- Chern-Simons Modified General Relativity
- Effective Field Theory for Inflation
- Fundamental Theoretical Bias in Gravitational Wave Astrophysics and the Parameterized Post-Einsteinian Framework
- A Parameterized Post-Friedmann Framework for Modified Gravity
- Dynamical Chern-Simons Modified Gravity I: Spinning Black Holes in the Slow-Rotation Approximation
- Solutions to Horava Gravity
- Crossing the Phantom Divide with Parameterized Post-Friedmann Dark Energy
- Reconstructing the Neutron-Star Equation of State from Astrophysical Measurements
- The Barbero-Immirzi Parameter as a Scalar Field: K-Inflation from Loop Quantum Gravity?
- The effects of Chern-Simons gravity on bodies orbiting the Earth
- Extreme- and Intermediate-Mass Ratio Inspirals in Dynamical Chern-Simons Modified Gravity
- Kerr Black Holes are Not Unique to General Relativity
- Higher-Derivative Corrected Black Holes: Perturbative Stability and Absorption Cross-Section in Heterotic String Theory
- The existence of relativistic stars in f(R) gravity
- How do Black Holes Spin in Chern-Simons Modified Gravity?
- A gravitational-wave probe of effective quantum gravity
- Population synthesis of radio and gamma-ray millisecond pulsars from the Galactic disk
- Relativistic stars in f(R) gravity
- Interaction of the Barbero--Immirzi Field with Matter and Pseudo-Scalar Perturbations
- The Pulsar Contribution to the Gamma-Ray Background
- Barbero-Immirzi field in canonical formalism of pure gravity
- A new PPN parameter to test Chern-Simons gravity
- Perturbations of Schwarzschild Black Holes in Chern-Simons Modified Gravity
- Parametrized Post-Newtonian Expansion of Chern-Simons Gravity
- Chern-Simons Modified Gravity as a Torsion Theory and its Interaction with Fermions
- Does a black hole rotate in Chern-Simons modified gravity?
- Papapetrou Energy-Momentum Tensor for Chern-Simons Modified Gravity
- Dirichlet boundary value problem for Chern-Simons modified gravity
- Seeking the Loop Quantum Gravity Barbero-Immirzi Parameter and Field in 4D, = 1 Supergravity
- Einstein-Cartan formulation of Chern-Simons Lorentz-violating Gravity
- Testing General Metric Theories of Gravity with Bursting Neutron Stars
- Gravity with Perturbative Constraints: Dark Energy Without New Degrees of Freedom
- Stable, Accelerating Universes in Modified Gravity
Cited by in corpus (34)
- Testing General Relativity with Present and Future Astrophysical Observations
- I-Love-Q Relations in Neutron Stars and their Applications to Astrophysics, Gravitational Waves and Fundamental Physics
- Gravitational Wave Tests of General Relativity with Ground-Based Detectors and Pulsar Timing Arrays
- Approximate Universal Relations for Neutron Stars and Quark Stars
- Testing General Relativity with Low-Frequency, Space-Based Gravitational-Wave Detectors
- Null geodesics and shadow of a rotating black hole in extended Chern-Simons modified gravity
- Slowly Rotating Black Holes in Dynamical Chern-Simons Gravity: Deformation Quadratic in the Spin
- Progress in Constraining Nuclear Symmetry Energy Using Neutron Star Observables Since GW170817
- Constraints on Einstein-Æther theory and Horava gravity from binary pulsar observations
- Towards Understanding Astrophysical Effects of Nuclear Symmetry Energy
- Gravitational signature of Schwarzschild black holes in dynamical Chern-Simons gravity
- Compact stars in alternative theories of gravity. Einstein-Dilaton-Gauss-Bonnet gravity
- Astrophysical and theoretical physics implications from multimessenger neutron star observations
- Surface Emission from Neutron Stars and Implications for the Physics of their Interiors
- Slowly-rotating stars and black holes in dynamical Chern-Simons gravity
- Isolated and Binary Neutron Stars in Dynamical Chern-Simons Gravity
- Neutron star mergers as a probe of modifications of general relativity with finite-range scalar forces
- I-Love-Q anisotropically: Universal relations for compact stars with scalar pressure anisotropy
- Equation-of-state insensitive relations after GW170817
- Black hole perturbation in parity violating gravitational theories
- Black hole perturbation in nondynamical and dynamical Chern-Simons gravity
- I-Love-Q Relations for Neutron Stars in dynamical Chern Simons Gravity
- Parametrizing and constraining scalar corrections to general relativity
- Scalar field excited around a rapidly rotating black hole in Chern-Simons modified gravity
- Gravitational waves and neutrino oscillations in Chern-Simons axion gravity
- Breaking the EOS-Gravity Degeneracy with Masses and Pulsating Frequencies of Neutron Stars
- The Role of Baryon Structure in Neutron Stars
- Astrophysical black holes as natural laboratories for fundamental physics and strong-field gravity
- On the moment of inertia of PSR J0348+0432
- Properties of Neutron Stars with hyperon cores in parameterized hydrostatic conditions
- Role of s in determining the properties of Neutron Stars in parameterized hydrostatic equilibrium
- Probing Fundamental Physics with Gravitational Waves
- Neutron stars as extreme gravity probes
- Parity from gauge symmetry