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纳米晶硅的热导率:晶粒尺寸和频率相关平均自由程的重要性。

Thermal conductivity of nanocrystalline silicon: importance of grain size and frequency-dependent mean free paths.

机构信息

Department of Mechanical Engineering, University of California, Riverside, California 92521, United States.

出版信息

Nano Lett. 2011 Jun 8;11(6):2206-13. doi: 10.1021/nl1045395. Epub 2011 May 9.

Abstract

The thermal conductivity reduction due to grain boundary scattering is widely interpreted using a scattering length assumed equal to the grain size and independent of the phonon frequency (gray). To assess these assumptions and decouple the contributions of porosity and grain size, five samples of undoped nanocrystalline silicon have been measured with average grain sizes ranging from 550 to 64 nm and porosities from 17% to less than 1%, at temperatures from 310 to 16 K. The samples were prepared using current activated, pressure assisted densification (CAPAD). At low temperature the thermal conductivities of all samples show a T(2) dependence which cannot be explained by any traditional gray model. The measurements are explained over the entire temperature range by a new frequency-dependent model in which the mean free path for grain boundary scattering is inversely proportional to the phonon frequency, which is shown to be consistent with asymptotic analysis of atomistic simulations from the literature. In all cases the recommended boundary scattering length is smaller than the average grain size. These results should prove useful for the integration of nanocrystalline materials in devices such as advanced thermoelectrics.

摘要

晶界散射导致的热导率降低通常使用假设的散射长度来解释,该长度被认为等于晶粒尺寸且与声子频率无关(灰色)。为了评估这些假设并分离孔隙率和晶粒尺寸的贡献,使用电流激活、压力辅助致密化(CAPAD)方法制备了五组平均晶粒尺寸从 550 到 64nm 不等、孔隙率从 17%到小于 1%的未掺杂纳米晶硅样品。在 310 到 16K 的温度范围内对这些样品进行了测量。在低温下,所有样品的热导率都表现出 T(2)的依赖性,这不能用任何传统的灰色模型来解释。通过一个新的频率相关模型,可以在整个温度范围内解释这些测量结果,在该模型中,晶界散射的平均自由程与声子频率成反比,这与文献中基于原子模拟的渐近分析是一致的。在所有情况下,推荐的边界散射长度都小于平均晶粒尺寸。这些结果对于将纳米晶材料集成到先进的热电设备等器件中应该是有用的。

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