English

Polaritonic Waveguide Emits Super-Planckian Thermal Radiation

Optics 2023-01-06 v1 Mesoscale and Nanoscale Physics

Abstract

Classical Planck's theory of thermal radiation predicts an upper limit of the heat transfer between two bodies separated by a distance longer than the dominant radiation wavelength (far-field regime). This limit can be overcome when the dimensions of the absorbent bodies are smaller than the dominant wavelength due to hybrid electromagnetic waves, known as surface phonon-polaritons (SPhPs). Here, we experimentally demonstrate that the far-field radiative heat transfer between two non-absorbent bodies can also overcome Planck's limit, by coating them with an absorbent material to form a polaritonic waveguide. This super-Planckian far-field thermal radiation is confirmed by measuring the radiative thermal conductance between two silicon plates coated with silicon dioxide nanolayers. The observed conductance is twice higher than Planck's limit and agrees with the predictions of our model for the SPhP waveguide modes. Our findings could be applied to thermal management in microelectronics and silicon photonics.

Keywords

Cite

@article{arxiv.2301.02076,
  title  = {Polaritonic Waveguide Emits Super-Planckian Thermal Radiation},
  author = {Saeko Tachikawa and Jose Ordonez-Miranda and Laurent Jalabert and Yunhui Wu and Yangyu Guo and Roman Anufriev and Byunggi Kim and Hiroyuki Fujita and Sebastian Volz and Masahiro Nomura},
  journal= {arXiv preprint arXiv:2301.02076},
  year   = {2023}
}
R2 v1 2026-06-28T08:03:48.879Z