Entropy bounds in nonlinear quantum nanooptics
arXiv:cond-mat/0507340 · doi:10.1142/S0217984906010846
Abstract
Optical entropy bounds for metal nanoparticles immersed in nonlinear optical media and for nonlinear dielectric microdroplets on metal surfaces are calculated near the frequency of the surface plasmon resonance. Similar to the Bekenstein-Hawking result for the black hole entropy, the entropy bounds in nonlinear quantum nanooptics may be expressed as the ratios of the droplet perimeter (nanoparticle area) to the effective Planck length (effective Planck length squared).
4 pages, 1 figure
References in corpus (5)
- Metastable states of surface plasmon vacuum near the interface between metal and nonlinear dielectric
- Surface plasmon dielectric waveguides
- Linear and nonlinear optics of surface plasmon toy-models of black holes and wormholes
- Nonlinear optics of surface plasmon toy black holes
- Plasmon-polaritons on the surface of a pseudosphere