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    Thermal Transport Control in Nanocarbon Composites and Thin Films

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    azu_etd_20676_sip1_m.pdf
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    Author
    Chen, Qiyu
    Issue Date
    2023
    Advisor
    Hao, Qing
    
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    Show full item record
    Publisher
    The University of Arizona.
    Rights
    Copyright © is held by the author. Digital access to this material is made possible by the University Libraries, University of Arizona. Further transmission, reproduction, presentation (such as public display or performance) of protected items is prohibited except with permission of the author.
    Abstract
    The continuous trend of integrated and smart devices requires materials to have superior mechanical/physical properties and potential to be used under extreme conditions. Nanostructured two-dimensional (2D) or thin-film materials have been widely used and tailored for nanoelectronics and energy-related applications such as thermal management of high-performance power electronics, thermoelectric and solar cells. To better understand and control the thermal transport within nanostructures, this dissertation is a collection of research projects about thermal engineering methods in nanocarbon composites and thin films.In this dissertation, for phonon transport in nanocarbons, composite films consisting of reduced graphene oxides (rGOs) and single-wall carbon nanotubes (SWCNTs) are experimentally studied for their in-plane thermal conductivities (k_∥) and reported with a rare amorphous solid-like thermal behavior, i.e. k_∥ following the trend of phonon specific heat. In understanding the phonon transport in polycrystalline thin-film materials, a simple analytical model is proposed to predict the in-plane thermal conductivity of columnar-grained thin films with independent treatments of phonon specularity at film boundaries and phonon transmissivity across grain boundaries. The experimental and theoretical works provide rich experience in the phonon engineering method to tailor the thermal transport in nanocarbon composites and thin films. Along another line, strain-dependent thermal studies have been carried out on Si thin films by a homemade vacuum-compatible holder with accurate strain control, providing important guidance to “elastic strain engineering” for thermal properties.
    Type
    Electronic Dissertation
    text
    Degree Name
    Ph.D.
    Degree Level
    doctoral
    Degree Program
    Graduate College
    Mechanical Engineering
    Degree Grantor
    University of Arizona
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