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Numerical Regularization of Electromagnetic Quantum Fluctuations in Inhomogeneous Dielectric Media

Mathematical Physics 2013-05-30 v1 math.MP Quantum Physics

Abstract

Electromagnetic Casimir stresses are of relevance to many technologies based on mesoscopic devices such as MEMS embedded in dielectric media, Casimir induced friction in nano-machinery, micro-fluidics and molecular electronics. Computation of such stresses based on cavity QED generally require numerical analysis based on a regularization process. A new scheme is described that has the potential for wide applicability to systems involving realistic inhomogeneous media. From a knowledge of the spectrum of the stationary modes of the electromagnetic field the scheme is illustrated by estimating numerically the Casimir stress on opposite faces of a pair of perfectly conducting planes separated by a vacuum and the change in this result when the region between the plates is filled with an incompressible inhomogeneous non-dispersive dielectric.

Keywords

Cite

@article{arxiv.1201.1160,
  title  = {Numerical Regularization of Electromagnetic Quantum Fluctuations in Inhomogeneous Dielectric Media},
  author = {Shin-itiro Goto and Alison C. Hale and Robin W. Tucker and Timothy J. Walton},
  journal= {arXiv preprint arXiv:1201.1160},
  year   = {2013}
}

Comments

5 pages, 2 figures, submitted to PRL