2014-03-11T15:50:53Z
2014-03-11T15:50:53Z
2013-03-18
2014-03-11T15:50:53Z
Radiative heat exchange at the nanoscale presents a challenge for several areas due to its scope and nature. Here, we provide a thermokinetic description of microscale radiative energy transfer including phonon-photon coupling manifested through a non-Debye relaxation behavior. We show that a lognormal-like distribution of modes of relaxation accounts for this non-Debye relaxation behavior leading to the thermal conductance. We also discuss the validity of the fluctuation-dissipation theorem. The general expression for the thermal conductance we obtain fits existing experimental results with remarkable accuracy. Accordingly, our approach offers an overall explanation of radiative energy transfer through micrometric gaps regardless of geometrical configurations and distances.
Article
Versió publicada
Anglès
Termodinàmica del desequilibri; Nanoestructures; Teoria quàntica; Propietats tèrmiques; Absorció de calor; Transferència d'energia; Entropia; Fotons; Nonequilibrium thermodynamics; Nanostructures; Quantum theory; Thermal properties; Heat absorption; Energy transfer; Entropy; Photons
Public Library of Science (PLoS)
Reproducció del document publicat a: http://dx.doi.org/10.1371/journal.pone.0058770
PLoS One, 2013, vol. 8, num. 3, p. e58770
http://dx.doi.org/10.1371/journal.pone.0058770
cc-by (c) Pérez Madrid, Agustín et al., 2013
http://creativecommons.org/licenses/by/3.0/es