Electromagnetic Casimir effect and the spacetime index of refraction
arXiv:1110.4257 · doi:10.1103/PhysRevD.85.044060
Abstract
In [5] we investigated the response of vacuum energy to a gravitational field by considering a Casimir apparatus in a weak gravitational field. Our approach was based on a conjecture involving the interpretation of spacetime as a refractive medium and its effect on vacuum energy composed of virtual massless scalar particles. There it was shown how the case of virtual photons as the constituents of vacuum could be inferred from that of the massless scalar field. Here we explicitly show how the same conjecture applies to the electromagnetic vacuum composed of virtual photons. Specifically we show that the boundary conditions imposed on the components of the vector field, decomposed into two scalar fields, result in the same frequency shift for photons. Using the same decomposition and employing our conjecture, we also calculate the electromagnetic energy density for the Casimir apparatus in a weak gravitational field.
16 pages, REVTeX 4, Replaced with the published version
References in corpus (5)
- How Does Casimir Energy Fall?
- Energy-momentum tensor for a Casimir apparatus in a weak gravitational field
- Why Does Gravity Ignore the Vacuum Energy?
- From Rindler space to the electromagnetic energy-momentum tensor of a Casimir apparatus in a weak gravitational field
- Vacuum energy and the spacetime index of refraction: A new synthesis
Cited by in corpus (9)
- Casimir effect of two conducting parallel plates in a general weak gravitational field
- Casimir effect due to a slowly rotating source in the weak field approximation
- Null Second Order Corrections to Casimir Energy in Weak Gravitational Field
- Casimir forces on deformed fermionic chains
- General relativistic analogs of Poisson's equation and gravitational binding energy
- Null second order corrections to Casimir energy in weak gravitational field: The Schwinger's approach
- Static and stationary dark fluid universes: A gravitoelectromagnetic perspective
- Papapetrou field as the gravitoelectromagnetic field tensor in stationary spacetimes
- Quantum vacuum under mixed boundary conditions: the case for curved spacetime