English

Radiative thermal runaway due to negative differential thermal emission across a solid-solid phase transition

Applied Physics 2018-08-15 v1

Abstract

Thermal runaway occurs when a rise in system temperature results in heat generation rates exceeding dissipation rates. Here we demonstrate that thermal runaway occurs in thermal radiative systems, given a sufficient level of negative differential thermal emission. By exploiting the insulator-to-metal phase transition of vanadium dioxide, we show that a small increase in heat generation (e.g., 10 nW/mm2) can result in a large change in surface temperature (e.g., ~35 K), as the thermal emitter switches from high emissivity to low emissivity. While thermal runaway is typically associated with catastrophic failure mechanisms, detailed understanding and control of this phenomenon may give rise to new opportunities in infrared sensing, camouflage, and rectification.

Keywords

Cite

@article{arxiv.1801.00376,
  title  = {Radiative thermal runaway due to negative differential thermal emission across a solid-solid phase transition},
  author = {David M. Bierman and Andrej Lenert and Mikhail A. Kats and You Zhou and Shuyan Zhang and Matthew De La Ossa and Shriram Ramanathan and Federico Capasso and Evelyn N. Wang},
  journal= {arXiv preprint arXiv:1801.00376},
  year   = {2018}
}
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