Quasi-local stress-tensor formalism and the Casimir effect
arXiv:2209.02122 · doi:10.1142/S0217732322501607
Abstract
We apply the quasi-local stress-energy tensor formalism to the Casimir effect of a scalar field confined between conducting planes located in a static spacetime. We show that the surface energy vanishes for both Neumann and Dirichlet boundary conditions and consequently the volume Casimir energy reduces to the famous zero point energy of the quantum field, i.e. . This enables us to reinforce previous results in the literature and extend the calculations to the case of massive and arbitrarily coupled scalar field. We found that there exists a first order perturbation correction to the Casimir energy contrary to previous claims which state that it vanishes. This shows many orders of magnitude greater than previous estimations for the energy corrections and makes it detectable by near future experiments.
References in corpus (10)
- Gravitational action with null boundaries
- How Does Casimir Energy Fall?
- Relativistic mechanics of Casimir apparatuses in a weak gravitational field
- Fermionic condensate and Casimir densities in the presence of compact dimensions with applications to nanotubes
- The Casimir effect in the nanoworld
- How does Casimir energy fall? III. Inertial forces on vacuum energy
- Energy-momentum tensor of a Casimir apparatus in a weak gravitational field: scalar case
- Casimir Effect in the Horava-Lifshitz Gravity with a Cosmological Constant
- Energy-momentum tensor for a scalar Casimir apparatus in a weak gravitational field: Neumann conditions
- Quantum vacuum under mixed boundary conditions: the case for curved spacetime