Casimir Friction in Terms of Moving Harmonic Oscillators: Equivalence Between Two Different Formulations
arXiv:1101.1241 · doi:10.1140/epjd/e2011-20109-1
Abstract
The Casimir friction problem can be dealt with in a simplified way by considering two harmonic oscillators moving with constant relative velocity. Recently we calculated the energy dissipation for such a case, [EPL {\bf 91}, 60003 (2010); Europ. Phys. J. D {\bf 61}, 335 (2011)]. A recent study of Barton [New J. Phys. {\bf 12}, 113044 (2010)] seemingly leads to a different result for the dissipation. If such a discrepancy really were true, it would imply a delicate difficulty for the basic theory of Casimir friction. In the present note we show that the expressions for the dissipation are in fact physically equivalent, at T=0.
7 pages, no figures; discussion expanded, references added. To appear in Eur. Phys. J. D
References in corpus (7)
- No quantum friction between uniformly moving plates
- Vacuum attraction, friction and heating of nanoparticles moving nearby a heated surface
- Radiation of a neutral polarizable particle moving uniformly through a thermal radiation field
- Casimir Friction Force and Energy Dissipation for Moving Harmonic Oscillators
- Conservative-dissipative forces and heating mediated by fluctuation electromagnetic field: two plates in relative nonrelativistic motion
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Cited by in corpus (10)
- The Reality of Casimir Friction
- Friction forces on atoms after acceleration
- Casimir friction at zero and finite temperatures
- Casimir Friction Between Dense Polarizable Media
- Fluctuation Electromagnetic Interaction Between Small Rotating Particle and a Surface
- Velocity-dependent dipole forces on an excited atom
- Casimir Friction Force Between Polarizable Media
- Casimir friction: Relative motion more generally
- Casimir Friction Force for Moving Harmonic Oscillators
- Vacuum electromagnetic field correlations between two moving points