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    Atomic-Level, Energy-Conversion Heat Transfer

    Source: Journal of Heat Transfer:;2021:;volume( 143 ):;issue: 009::page 090801-1
    Author:
    Kaviany, M.
    DOI: 10.1115/1.4051463
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Heat is stored in quanta of kinetic and potential energies in matter. The temperature represents the equilibrium and excited occupation (boson) of these energy conditions. Temporal and spatial temperature variations and heat transfer are associated with the kinetics of these equilibrium excitations. During energy-conversion (between electron and phonon systems), the occupancies deviate from equilibria, while holding atomic-scale, inelastic spectral energy transfer kinetics. Heat transfer physics reaches nonequilibrium energy excitations and kinetics among the principal carriers, phonon, electron (and holes and ions), fluid particle, and photon. This allows atomic-level tailoring of energetic materials and energy-conversion processes and their efficiencies. For example, modern thermal-electric harvesters have transformed broad-spectrum, high-entropy heat into a narrow spectrum of low-entropy emissions to efficiently generate thermal electricity. Phonoelectricity, in contrast, intervenes before a low-entropy population of nonequilibrium optical phonons becomes a high-entropy heat. In particular, the suggested phonovoltaic cell generates phonoelectricity by employing the nonequilibrium, low-entropy, and elevated temperature optical-phonon produced population—for example, by relaxing electrons, excited by an electric field. A phonovoltaic material has an ultranarrow electronic bandgap, such that the hot optical-phonon population can relax by producing electron-hole pairs (and power) instead of multiple acoustic phonons (and entropy). Examples of these quanta and spectral heat transfer are reviewed, contemplating a prospect for education and research in this field.
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      Atomic-Level, Energy-Conversion Heat Transfer

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    contributor authorKaviany, M.
    date accessioned2022-02-06T05:34:16Z
    date available2022-02-06T05:34:16Z
    date copyright7/19/2021 12:00:00 AM
    date issued2021
    identifier issn0022-1481
    identifier otherht_143_09_090801.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4278304
    description abstractHeat is stored in quanta of kinetic and potential energies in matter. The temperature represents the equilibrium and excited occupation (boson) of these energy conditions. Temporal and spatial temperature variations and heat transfer are associated with the kinetics of these equilibrium excitations. During energy-conversion (between electron and phonon systems), the occupancies deviate from equilibria, while holding atomic-scale, inelastic spectral energy transfer kinetics. Heat transfer physics reaches nonequilibrium energy excitations and kinetics among the principal carriers, phonon, electron (and holes and ions), fluid particle, and photon. This allows atomic-level tailoring of energetic materials and energy-conversion processes and their efficiencies. For example, modern thermal-electric harvesters have transformed broad-spectrum, high-entropy heat into a narrow spectrum of low-entropy emissions to efficiently generate thermal electricity. Phonoelectricity, in contrast, intervenes before a low-entropy population of nonequilibrium optical phonons becomes a high-entropy heat. In particular, the suggested phonovoltaic cell generates phonoelectricity by employing the nonequilibrium, low-entropy, and elevated temperature optical-phonon produced population—for example, by relaxing electrons, excited by an electric field. A phonovoltaic material has an ultranarrow electronic bandgap, such that the hot optical-phonon population can relax by producing electron-hole pairs (and power) instead of multiple acoustic phonons (and entropy). Examples of these quanta and spectral heat transfer are reviewed, contemplating a prospect for education and research in this field.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleAtomic-Level, Energy-Conversion Heat Transfer
    typeJournal Paper
    journal volume143
    journal issue9
    journal titleJournal of Heat Transfer
    identifier doi10.1115/1.4051463
    journal fristpage090801-1
    journal lastpage090801-14
    page14
    treeJournal of Heat Transfer:;2021:;volume( 143 ):;issue: 009
    contenttypeFulltext
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