We present numerical-relativity simulations of spherically symmetric core collapse and compact-object formation in scalar-tensor theories of gravity. The additional scalar degree of freedom introduces a propagating monopole gravitational-wave mode. Detection of monopole scalar waves with current and future gravitational-wave experiments may constitute smoking gun evidence for strong-field modifications of general relativity. We collapse both polytropic and more realistic pre-supernova profiles using a high-resolution shock-capturing scheme and an approximate prescription for the nuclear equation of state. The most promising sources of scalar radiation are protoneutron stars collapsing to black holes. In case of a galactic core collapse even...
We study the scalar stochastic gravitational-wave background (SGWB) from astrophysical sources, incl...
Despite stringent constraints set by astrophysical observations, there remain viable scalar-tensor t...
Although general relativity passes all precision tests to date, there are several reasons to go beyo...
We present numerical-relativity simulations of spherically symmetric core collapse and compact-objec...
We present numerical-relativity simulations of spherically symmetric core collapse and compact-objec...
This is the final version of the article. It first appeared from the Institute of Physics via http:/...
We present numerical-relativity simulations of spherically symmetric core collapse and compact-objec...
This paper provides an extended exploration of the inverse-chirp gravitational-wave signals from ste...
This paper provides an extended exploration of the inverse-chirp gravitational-wave signals from ste...
This paper provides an extended exploration of the inverse-chirp gravitational-wave signals from ste...
Tensor-scalar theory of gravity allows the generation of gravitational waves from astrophysical sour...
Unlike general relativity, scalar-tensor theories of gravity predict scalar gravitational waves even...
We perform a comprehensive numerical study of gravitational waves from stellar core collapse in the ...
Many classes of extended scalar-tensor theories predict that dynamical instabilities can take place ...
Extending general relativity by adding extra degrees of freedom is a popular approach for explaining...
We study the scalar stochastic gravitational-wave background (SGWB) from astrophysical sources, incl...
Despite stringent constraints set by astrophysical observations, there remain viable scalar-tensor t...
Although general relativity passes all precision tests to date, there are several reasons to go beyo...
We present numerical-relativity simulations of spherically symmetric core collapse and compact-objec...
We present numerical-relativity simulations of spherically symmetric core collapse and compact-objec...
This is the final version of the article. It first appeared from the Institute of Physics via http:/...
We present numerical-relativity simulations of spherically symmetric core collapse and compact-objec...
This paper provides an extended exploration of the inverse-chirp gravitational-wave signals from ste...
This paper provides an extended exploration of the inverse-chirp gravitational-wave signals from ste...
This paper provides an extended exploration of the inverse-chirp gravitational-wave signals from ste...
Tensor-scalar theory of gravity allows the generation of gravitational waves from astrophysical sour...
Unlike general relativity, scalar-tensor theories of gravity predict scalar gravitational waves even...
We perform a comprehensive numerical study of gravitational waves from stellar core collapse in the ...
Many classes of extended scalar-tensor theories predict that dynamical instabilities can take place ...
Extending general relativity by adding extra degrees of freedom is a popular approach for explaining...
We study the scalar stochastic gravitational-wave background (SGWB) from astrophysical sources, incl...
Despite stringent constraints set by astrophysical observations, there remain viable scalar-tensor t...
Although general relativity passes all precision tests to date, there are several reasons to go beyo...