Classical Casimir-Polder force between polarizable microparticles and thin films including graphene

G. L. Klimchitskaya and V. M. Mostepanenko
Phys. Rev. A 89, 012516 – Published 31 January 2014

Abstract

We derive analytic expressions for the classical Casimir-Polder free energy and force for a polarizable (magnetizable) atom (microparticle) interacting with thin films, made of different materials, or graphene. It is shown that for an isolated dielectric film the free energy and force decrease quicker with separation compared to the case of an atom interacting with a thick plate (semispace). For metallic films some peculiar features depending on the model of the metal used are analyzed. For an atom interacting with graphene we demonstrate that at room temperature the classical regime is achieved at about 1.5-μm separation. In this regime the contributions to the free energy and force due to atomic magnetic polarizability are suppressed compared to the main terms caused by the atomic electric polarizability. According to our results, at separations above 5μm the Casimir-Polder interaction of atoms with graphene is of the same strength as with an ideal-metal plane. The classical interaction of atoms with thin films deposited on substrates is also considered.

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  • Received 20 December 2013

DOI:https://doi.org/10.1103/PhysRevA.89.012516

©2014 American Physical Society

Authors & Affiliations

G. L. Klimchitskaya and V. M. Mostepanenko

  • Central Astronomical Observatory at Pulkovo, Russian Academy of Sciences, St. Petersburg 196140, Russia and Institute of Physics, Nanotechnology and Telecommunications, St. Petersburg State Polytechnical University, St. Petersburg 195251, Russia

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Vol. 89, Iss. 1 — January 2014

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