We revisit the old problem of the self-force on a particle moving in a weak-field spacetime in the context of renewed interest in two-body gravitational scattering. We analytically calculate the scalar, electromagnetic, and gravitational self-force on a particle moving on a straight-line trajectory at a large distance from a Newtonian star, and use these results to find the associated correction to its motion. In the gravitational case we must also include the matter-mediated force, which acts at the same perturbative order as the gravitational self-force. We further augment the gravitational results with geodesic calculations at second order in the central body mass to determine the full, explicit solution to the two-body gravitational sca...
Using self-force methods, we consider the hyperbolic-type scattering of a pointlike particle carryin...
We calculate the self-force acting on a charged particle on a circular geodesic orbit in the equator...
We calculate the tidal corrections to the loss of angular momentum in a two-body collision at leadin...
We derive an effective field theory describing a pair of gravitationally interacting point particles...
We review recent theoretical progress in the so-called self-force problem of a general relativistic ...
We compute to high post-Newtonian accuracy the 4-momentum (linear momentum, and energy), radiated as...
The motion of a radiating point particle can be represented by a series of geodesics whose "constant...
We discuss a practical method to compute the self-force on a particle moving through a curved spacet...
International audienceWe adopt the Dirac-Detweiler-Whiting radiative and regular effective field in ...
We adopt the Dirac-Detweiler-Whiting radiative and regular effective field in curved spacetime. Ther...
When a small, uncharged, compact object is immersed in an external background spacetime, at zeroth o...
The likelihood that gravitational waves from stellar-size black holes spiraling into a supermassive ...
The self-force problem—which asks how self-interaction affects a body’s motion—has been poorly studi...
This article serves as a pedagogical introduction to the problem of motion in classical field theori...
International audienceThe problem of a compact binary system whose components move on circular orbit...
Using self-force methods, we consider the hyperbolic-type scattering of a pointlike particle carryin...
We calculate the self-force acting on a charged particle on a circular geodesic orbit in the equator...
We calculate the tidal corrections to the loss of angular momentum in a two-body collision at leadin...
We derive an effective field theory describing a pair of gravitationally interacting point particles...
We review recent theoretical progress in the so-called self-force problem of a general relativistic ...
We compute to high post-Newtonian accuracy the 4-momentum (linear momentum, and energy), radiated as...
The motion of a radiating point particle can be represented by a series of geodesics whose "constant...
We discuss a practical method to compute the self-force on a particle moving through a curved spacet...
International audienceWe adopt the Dirac-Detweiler-Whiting radiative and regular effective field in ...
We adopt the Dirac-Detweiler-Whiting radiative and regular effective field in curved spacetime. Ther...
When a small, uncharged, compact object is immersed in an external background spacetime, at zeroth o...
The likelihood that gravitational waves from stellar-size black holes spiraling into a supermassive ...
The self-force problem—which asks how self-interaction affects a body’s motion—has been poorly studi...
This article serves as a pedagogical introduction to the problem of motion in classical field theori...
International audienceThe problem of a compact binary system whose components move on circular orbit...
Using self-force methods, we consider the hyperbolic-type scattering of a pointlike particle carryin...
We calculate the self-force acting on a charged particle on a circular geodesic orbit in the equator...
We calculate the tidal corrections to the loss of angular momentum in a two-body collision at leadin...