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    In-plane lattice thermal conductivity predictions of thin films within columnar grains

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    Author
    Chen, Q.
    Hao, Q.
    Affiliation
    Department of Aerospace and Mechanical Engineering, University of Arizona
    Issue Date
    2023-07-24
    
    Metadata
    Show full item record
    Publisher
    American Institute of Physics Inc.
    Citation
    Qiyu Chen, Qing Hao; In-plane lattice thermal conductivity predictions of thin films within columnar grains. J. Appl. Phys. 28 July 2023; 134 (4): 045103. https://doi.org/
    Journal
    Journal of Applied Physics
    Rights
    Published under an exclusive license by AIP Publishing.
    Collection Information
    This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.
    Abstract
    Polycrystalline thin films are widely used for devices and energy-related applications, such as power electronics, solar cells, and thermal management of devices. In many cases, large-scale crystallization during thin-film growth is challenging, so columnar grains are often found in metal and semiconductor thin films. These rough columnar grain boundaries may also have different phonon specularities from that for typically smoother top/bottom film surfaces. A simple analytical model to separately treat these boundaries and interfaces for phonon scattering is currently unavailable, although the in-plane thermal transport is critical to heat spreading within thin-film devices. In this paper, we extend the effective medium formulation from three-dimensional polycrystalline bulk materials to columnar-grained thin films. The model predictions agree well with those given by frequency-dependent phonon Monte Carlo simulations, considering varied phonon specularity at top/bottom film surfaces and grain-boundary phonon transmissivity. The analytical model is further used to analyze the existing data on polycrystalline ZnO thin films with columnar grains. © 2023 Author(s).
    Note
    12 month embargo; first published 24 July 2023
    ISSN
    0021-8979
    DOI
    10.1063/5.0158778
    Version
    Final Published version
    ae974a485f413a2113503eed53cd6c53
    10.1063/5.0158778
    Scopus Count
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    UA Faculty Publications

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