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Anomalous thermal conductivity by surface phonon-polaritons of polar nano thin films due to their asymmetric surrounding media

机译:极性纳米薄膜的表面声子-极化子因其非对称周围介质而异常导热

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摘要

The surface phonon-polaritons contribution to the thermal conductivity of a nano thin film of silicon dioxide is investigated based on the Maxwell equations and the Boltzmann transport equation. It is shown that: (1) a small difference between the permittivities of the substrate and superstate of the film can generate giant propagation lengths and therefore remarkably enhances its thermal conductivity with respect to values obtained for a freestanding one. (2) The propagation of surface phonon-polaritons is present in a broad band of frequencies and exhibits its largest propagation lengths at the frequency where the absorption of energy is minimal. (3) The increase of the thermal conductivity of the film as its thickness decreases is higher when it is deposited on potassium bromide instead of being suspended in air. The difference in the thermal conductivity for these two systems increases with increasing temperature and reducing the film thickness. A thermal conductivity as high as 2.5 W/m K is obtained for a 30nm-thick thin film at room temperature, which is about 1.8 times larger than its bulk phonon value. The obtained results show that the propagation of surface phonon-polaritons has the potential not only to offset the reduction of the phonon thermal conductivity of a nano thin film, when its sizes are scaled down, but also to enhance it, by choosing properly the permittivity of its substrate.
机译:基于麦克斯韦方程和玻耳兹曼输运方程,研究了表面声子-极化子对二氧化硅纳米薄膜导热性的影响。结果表明:(1)基板的介电常数和薄膜的超状态之间的微小差异会产生巨大的传播长度,因此,相对于独立式获得的值,其导热系数显着提高。 (2)表面声子-极化子的传播存在于很宽的频率范围内,并且在能量吸收最小的频率处表现出最大的传播长度。 (3)当沉积在溴化钾上而不是悬浮在空气中时,随着膜厚度的减小,膜的热导率增加更高。这两个系统的热导率差异随着温度的升高和膜厚度的减小而增大。在室温下,厚度为30nm的薄膜的热导率高达2.5 W / m K,约为其体声子值的1.8倍。所得结果表明,表面声子-极化子的传播不仅具有抵消纳米薄膜声子导热率降低的潜力,而且还可以通过适当选择介电常数来提高纳米薄膜的声子导热率。其基材。

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  • 来源
    《Journal of Applied Physics》 |2013年第8期|084311.1-084311.8|共8页
  • 作者单位

    Laboratoire d'Energetique Moleculaire et Macroscopique, Combustion, UPR CNRS 288,Ecole Centrale Paris, Grande Voie des Vignes, 92295 Chatenay Malabry, France;

    Laboratoire d'Energetique Moleculaire et Macroscopique, Combustion, UPR CNRS 288,Ecole Centrale Paris, Grande Voie des Vignes, 92295 Chatenay Malabry, France;

    CIRMM, Institute of Industrial Science, University of Tokyo, Tokyo, Japan;

    CIRMM, Institute of Industrial Science, University of Tokyo, Tokyo, Japan;

    Ecole Centrale Paris, Laboratoire de Photonique Quantique et Moleculaire, CNRS (UMR 8537),Ecole Normale Superieure de Cachan, Grande Voie des Vignes, F-92295 Chatenay-Malabry cedex, France;

    Laboratoire d'Energetique Moleculaire et Macroscopique, Combustion, UPR CNRS 288,Ecole Centrale Paris, Grande Voie des Vignes, 92295 Chatenay Malabry, France;

    Laboratoire d'Energetique Moleculaire et Macroscopique, Combustion, UPR CNRS 288,Ecole Centrale Paris, Grande Voie des Vignes, 92295 Chatenay Malabry, France,Ecole Centrale Paris, Laboratoire de Photonique Quantique et Moleculaire, CNRS (UMR 8537),Ecole Normale Superieure de Cachan, Grande Voie des Vignes, F-92295 Chatenay-Malabry cedex, France;

    Laboratoire d'Energetique Moleculaire et Macroscopique, Combustion, UPR CNRS 288,Ecole Centrale Paris, Grande Voie des Vignes, 92295 Chatenay Malabry, France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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