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Thermal conductivity of bulk In$_{2}$O$_{3}$ single crystals

Materials Science 2021-01-20 v4 Applied Physics

Abstract

The transparent semiconductor In2_{2}O3_{3} is a technologically important material. It combines optical transparency in the visible frequency range and sizeable electric conductivity. We present a study of thermal conductivity of In2_{2}O3_{3} crystals and find that around 20 K, it peaks to a value as high as 5,000 WK1^{-1}m1^{-1}, comparable to the peak thermal conductivity in silicon and exceeded only by a handful of insulators. The amplitude of the peak drastically decreases in presence of a type of disorder, which does not simply correlate with the density of mobile electrons. Annealing enhances the ceiling of the phonon mean free path. Samples with the highest thermal conductivity are those annealed in the presence of hydrogen. Above 100 K, thermal conductivity becomes sample independent. In this intrinsic regime, dominated by phonon-phonon scattering, the magnitude of thermal diffusivity, DD becomes comparable to many other oxides, and its temperature dependence evolves towards T1T^{-1}. The ratio of DD to the square of sound velocity yields a scattering time which obeys the expected scaling with the Planckian time.

Keywords

Cite

@article{arxiv.2008.13519,
  title  = {Thermal conductivity of bulk In$_{2}$O$_{3}$ single crystals},
  author = {Liangcai Xu and Benoit Fauqué and Zengwei Zhu and Zbigniew Galazka and Klaus Irmscher and Kamran Behnia},
  journal= {arXiv preprint arXiv:2008.13519},
  year   = {2021}
}

Comments

7 pages, 5 figures