Skip to main content

Exact formulas for radiative heat transfer between planar bodies under arbitrary temperature profiles: Modified asymptotics and sign-flip transitions

Author(s): Messina, R; Jin, W; Rodriguez, Alejandro W

Download
To refer to this page use: http://arks.princeton.edu/ark:/88435/pr1n56n
Abstract: We derive exact analytical formulas for the radiative heat transfer between parallel slabs separated by vacuum and subject to arbitrary temperature profiles. We show that, depending on the derivatives of the temperature at points close to the slab-vacuum interfaces, the flux can exhibit one of several different asymptotic low-distance (d) behaviors, obeying either 1/d2,1/d, or logarithmic power laws, or approaching a constant. Tailoring the temperature profile within the slabs could enable unprecedented tunability over heat exchange, leading for instance to sign-flip transitions (where the flux reverses sign) at tunable distances. Our results are relevant to the theoretical description of on-going experiments measuring near-field heat transfer at nanometric distances, where the coupling between radiative and conductive transfer could result in temperature gradients.
Publication Date: 2016
Citation: Messina, R, Jin, W, Rodriguez, AW. (2016). Exact formulas for radiative heat transfer between planar bodies under arbitrary temperature profiles: Modified asymptotics and sign-flip transitions. Physical Review B, 94 (10.1103/PhysRevB.94.205438
DOI: doi:10.1103/PhysRevB.94.205438
Type of Material: Journal Article
Journal/Proceeding Title: Physical Review B
Version: Author's manuscript



Items in OAR@Princeton are protected by copyright, with all rights reserved, unless otherwise indicated.