Self-force theory is the leading method of modeling extreme-mass-ratio inspirals (EMRIs), key sources for the gravitational-wave detector LISA. It is well known that for an accurate EMRI model, {\em second-order} self-force effects are critical, but calculations of these effects have been beset by obstacles. In this letter we present the first implementation of a complete scheme for second-order self-force computations, specialized to the case of quasicircular orbits about a Schwarzschild black hole. As a demonstration, we calculate the gravitational binding energy of these binaries
We produce gravitational waveforms for nonspinning compact binaries undergoing a quasicircular inspi...
International audienceWe produce gravitational waveforms for nonspinning compact binaries undergoing...
The likelihood that gravitational waves from stellar-size black holes spiraling into a supermassive ...
This project makes progress towards a first calculation of the second-order gravitational self-force...
Using the first law of binary black-hole mechanics, we compute the binding energy E and total angula...
Using the first law of binary black-hole mechanics, we compute the binding energy E and total angula...
Using the first law of binary black-hole mechanics, we compute the binding energy E and total angula...
Within the framework of self-force theory, we compute the gravitational-wave energy flux through sec...
Within the framework of self-force theory, we compute the gravitational-wave energy flux through sec...
Gravitational-wave astronomy has been a burgeoning field of research since the first detection of a ...
Extreme-mass-ratio inspirals (EMRIs) will be key sources for LISA. However, accurately extracting sy...
Using the first law of binary black-hole mechanics, we compute the binding energy E and total angula...
We produce gravitational waveforms for nonspinning compact binaries undergoing a quasicircular inspi...
We produce gravitational waveforms for nonspinning compact binaries undergoing a quasicircular inspi...
We present an algorithm for calculating the metric perturbations and gravitational self-force for ex...
We produce gravitational waveforms for nonspinning compact binaries undergoing a quasicircular inspi...
International audienceWe produce gravitational waveforms for nonspinning compact binaries undergoing...
The likelihood that gravitational waves from stellar-size black holes spiraling into a supermassive ...
This project makes progress towards a first calculation of the second-order gravitational self-force...
Using the first law of binary black-hole mechanics, we compute the binding energy E and total angula...
Using the first law of binary black-hole mechanics, we compute the binding energy E and total angula...
Using the first law of binary black-hole mechanics, we compute the binding energy E and total angula...
Within the framework of self-force theory, we compute the gravitational-wave energy flux through sec...
Within the framework of self-force theory, we compute the gravitational-wave energy flux through sec...
Gravitational-wave astronomy has been a burgeoning field of research since the first detection of a ...
Extreme-mass-ratio inspirals (EMRIs) will be key sources for LISA. However, accurately extracting sy...
Using the first law of binary black-hole mechanics, we compute the binding energy E and total angula...
We produce gravitational waveforms for nonspinning compact binaries undergoing a quasicircular inspi...
We produce gravitational waveforms for nonspinning compact binaries undergoing a quasicircular inspi...
We present an algorithm for calculating the metric perturbations and gravitational self-force for ex...
We produce gravitational waveforms for nonspinning compact binaries undergoing a quasicircular inspi...
International audienceWe produce gravitational waveforms for nonspinning compact binaries undergoing...
The likelihood that gravitational waves from stellar-size black holes spiraling into a supermassive ...