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The Casimir effect: Recent controversies and progress

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arxiv hep-th/0406024 v1 pith:ZNRDLWDW submitted 2004-06-02 hep-th astro-phquant-ph

The Casimir effect: Recent controversies and progress

classification hep-th astro-phquant-ph
keywords casimirforceeffectgivenquantumself-stressdeltadielectric
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The phenomena implied by the existence of quantum vacuum fluctuations, grouped under the title of the Casimir effect, are reviewed, with emphasis on new results discovered in the past four years. The Casimir force between parallel plates is rederived as the strong-coupling limit of $\delta$-function potential planes. The role of surface divergences is clarified. A summary of effects relevant to measurements of the Casimir force between real materials is given, starting from a geometrical optics derivation of the Lifshitz formula, and including a rederivation of the Casimir-Polder forces. A great deal of attention is given to the recent controversy concerning temperature corrections to the Casimir force between real metal surfaces. A summary of new improvements to the proximity force approximation is given, followed by a synopsis of the current experimental situation. New results on Casimir self-stress are reported, again based on $\delta$- function potentials. Progress in understanding divergences in the self-stress of dielectric bodies is described, in particular the status of a continuing calculation of the self-stress of a dielectric cylinder. Casimir effects for solitons, and the status of the so-called dynamical Casimir effect, are summarized. The possibilities of understanding dark energy, strongly constrained by both cosmological and terrestrial experiments, in terms of quantum fluctuations are discussed. Throughout, the centrality of quantum vacuum energy in fundamental physics in emphasized.

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  1. On the simple derivation of the Casimir effect

    quant-ph 2026-06 unverdicted novelty 2.0

    Discussion of mathematical nuances in Casimir's original derivation to achieve a complete and sound simple derivation of the effect.