The dynamics of spinning particles in curved space–time is discussed, emphasizing the hamiltonian formulation. Different choices of hamiltonians allow for the description of different gravitating systems. We give full results for the simplest case with minimal hamiltonian, constructing constants of motion including spin. The analysis is illustrated by the example of motion in Schwarzschild space–time. We also discuss a non-minimal extension of the hamiltonian giving rise to a gravitational equivalent of the Stern–Gerlach force. We show that this extension respects a large class of known constants of motion for the minimal case
A spinor representation of the generalized energy-momentum density 4-vector is proposed, and example...
A spinor representation of the generalized energy-momentum density 4-vector is proposed, and example...
We consider a spinning test-body in circular motion around a nonrotating black hole and analyze dif...
The dynamics of spinning particles in curved space–time is discussed, emphasizing the hamiltonian fo...
AbstractThe dynamics of spinning particles in curved space–time is discussed, emphasizing the hamilt...
The dynamics of spinning particles in curved space–time is discussed, emphasizing the hamiltonian fo...
Coalescing binary systems are supposed to be good sources for gravitational radiation. The data anal...
Using a Legendre transformation, we compute the unconstrained Hamiltonian of a spinning test-particl...
The spin-curvature coupling as captured by the so-called Mathisson-Papapetrou-Dixon (MPD) equations ...
We derive a Hamiltonian for an extended spinning test-body in a curved background spacetime, to quad...
We analyze the behavior of a spinning particle in gravity, both from a quantum and a classical point...
The general model of an arbitrary spin massive particle in any dimensional space-time is derived on ...
Using a Legendre transformation, we compute the unconstrained Hamiltonian of a spinning test-particl...
Using a Legendre transformation, we compute the unconstrained Hamiltonian of a spinning test-particl...
Using a Legendre transformation, we compute the unconstrained Hamiltonian of a spinning test-particl...
A spinor representation of the generalized energy-momentum density 4-vector is proposed, and example...
A spinor representation of the generalized energy-momentum density 4-vector is proposed, and example...
We consider a spinning test-body in circular motion around a nonrotating black hole and analyze dif...
The dynamics of spinning particles in curved space–time is discussed, emphasizing the hamiltonian fo...
AbstractThe dynamics of spinning particles in curved space–time is discussed, emphasizing the hamilt...
The dynamics of spinning particles in curved space–time is discussed, emphasizing the hamiltonian fo...
Coalescing binary systems are supposed to be good sources for gravitational radiation. The data anal...
Using a Legendre transformation, we compute the unconstrained Hamiltonian of a spinning test-particl...
The spin-curvature coupling as captured by the so-called Mathisson-Papapetrou-Dixon (MPD) equations ...
We derive a Hamiltonian for an extended spinning test-body in a curved background spacetime, to quad...
We analyze the behavior of a spinning particle in gravity, both from a quantum and a classical point...
The general model of an arbitrary spin massive particle in any dimensional space-time is derived on ...
Using a Legendre transformation, we compute the unconstrained Hamiltonian of a spinning test-particl...
Using a Legendre transformation, we compute the unconstrained Hamiltonian of a spinning test-particl...
Using a Legendre transformation, we compute the unconstrained Hamiltonian of a spinning test-particl...
A spinor representation of the generalized energy-momentum density 4-vector is proposed, and example...
A spinor representation of the generalized energy-momentum density 4-vector is proposed, and example...
We consider a spinning test-body in circular motion around a nonrotating black hole and analyze dif...