Weyl problem and Casimir effects in spherical shell geometry
arXiv:1110.0421 · doi:10.1103/PhysRevA.87.042519
Abstract
We compute the generic mode sum that quantifies the effect on the spectrum of a harmonic field when a spherical shell is inserted into vacuum. This encompasses a variety of problems including the Weyl spectral problem and the Casimir effect of quantum electrodynamics. This allows us to resolve several long-standing controversies regarding the question of universality of the Casimir self-energy; the resolution comes naturally through the connection to the Weyl problem. Specifically we demonstrate that in the case of a scalar field obeying Dirichlet or Neumann boundary conditions on the shell surface the Casimir self-energy is cutoff-dependent while in the case of the electromagnetic field perturbed by a conductive shell the Casimir self-energy is universal. We additionally show that an analog non-relativistic Casimir effect due to zero-point magnons takes place when a non-magnetic spherical shell is inserted inside a bulk ferromagnet.
9 pages, minor changes, additional references added, version to be published in Phys. Rev. A
Cited by in corpus (10)
- Magnonic Casimir Effect in Ferrimagnets
- Remnants of the nonrelativistic Casimir effect on the lattice
- Non-Hermitian Casimir effect of magnons
- Spectral properties of size-invariant shape transformation
- Casimir interaction of arbitrarily shaped conductors
- Some Subtleties in the Relationships among Heat Kernel Invariants, Eigenvalue Distributions, and Quantum Vacuum Energy
- Quantum vacuum effects in non-relativistic quantum field theory
- Casimir energy of smooth compact surfaces
- Aharonov-Bohm magnetism and Landau diamagnetism in semimetals
- Quantum Shape Effects