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首页> 外文期刊>Physics Letters, A >Size and porosity effects on thermal conductivity of nanoporous material with an extension to nanoporous particles embedded in a host matrix
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Size and porosity effects on thermal conductivity of nanoporous material with an extension to nanoporous particles embedded in a host matrix

机译:尺寸和孔隙率对纳米多孔材料导热性的影响,并扩展到嵌入主体基质中的纳米多孔颗粒

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A formula for the effective thermal conductivity of nanoporous media is derived, following a thermodynamic approach. An extension to nanocomposites composed of a homogeneous matrix wherein porous nanoparticles are dispersed is proposed as well. The originality of the model is that it is based on extended irreversible thermodynamics, a theory specifically designed for sub-scaled systems. Two different situations are discussed: in the first one, nanoporous silicon with spherical porous inclusions of micro-, meso- and macro-dimension respectively is considered. The description is validated by comparison with experimental data and five other models. Analysis of the results shows an excellent agreement of our theoretical approach with experiments in the whole range of porous radii, from 2 to 100 nm. In the second part of the work, thermal conductivity of porous silicon nanoparticles embedded in a germanium host matrix is investigated. The coupled influence of the pore and nanoparticles sizes is emphasized. (C) 2015 Elsevier B.V. All rights reserved.
机译:遵循热力学方法,得出了纳米多孔介质有效导热系数的公式。还提出了对由均质基质组成的纳米复合材料的扩展,其中多孔纳米颗粒分散在其中。该模型的独创性在于它基于扩展的不可逆热力学,该理论是专门为小规模系统设计的。讨论了两种不同的情况:在第一种情况中,考虑了分别具有微米,中观和宏观尺寸的球形多孔夹杂物的纳米多孔硅。通过与实验数据和其他五个模型进行比较来验证该描述。结果分析表明,我们的理论方法与多孔半径(从2到100 nm)整个范围内的实验完全吻合。在工作的第二部分中,研究了嵌入锗基质中的多孔硅纳米颗粒的导热性。强调了孔和纳米颗粒尺寸的耦合影响。 (C)2015 Elsevier B.V.保留所有权利。

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