Tachikawa Saeko, Ordonez-Miranda Jose, Wu Yunhui, Jalabert Laurent, Anufriev Roman, Volz Sebastian, Nomura Masahiro
Institute of Industrial Science, The University of Tokyo, Tokyo 153-8505, Japan.
Institut Pprime, CNRS, Universite de Poitiers, ISAE-ENSMA, F-86962 Futuroscope Chasseneuil, France.
Nanomaterials (Basel). 2020 Jul 15;10(7):1383. doi: 10.3390/nano10071383.
Surface phonon-polaritons (SPhPs) are evanescent electromagnetic waves that can propagate distances orders of magnitude longer than the typical mean free paths of phonons and electrons. Therefore, they are expected to be powerful heat carriers capable of significantly enhancing the in-plane thermal conductance of polar nanostructures. In this work, we show that a SiO 2 /Si (10 μ m thick)/SiO 2 layered structure efficiently enhances the SPhP heat transport, such that its in-plane thermal conductance is ten times higher than the corresponding one of a single SiO 2 film, due to the coupling of SPhPs propagating along both of its polar SiO 2 nanolayers. The obtained results thus show that the proposed three-layer structure can outperform the in-plane thermal performance of a single suspended film while improving significantly its mechanical stability.
表面声子极化激元(SPhPs)是一种倏逝电磁波,其传播距离比声子和电子的典型平均自由程长几个数量级。因此,它们有望成为强大的热载体,能够显著提高极性纳米结构的面内热导率。在这项工作中,我们表明,SiO₂/Si(10μm厚)/SiO₂层状结构有效地增强了SPhP热传输,由于沿其两个极性SiO₂纳米层传播的SPhP的耦合,其面内热导率比单个SiO₂薄膜的相应热导率高十倍。因此,所得结果表明,所提出的三层结构在显著提高其机械稳定性的同时,可以超越单个悬浮薄膜的面内热性能。