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孔径约为100纳米的纳米多孔硅膜的热学研究——不同钻孔技术的比较

Thermal Studies of Nanoporous Si Films with Pitches on the Order of 100 nm -Comparison between Different Pore-Drilling Techniques.

作者信息

Hao Qing, Xu Dongchao, Zhao Hongbo, Xiao Yue, Medina Fabian Javier

机构信息

Aerospace & Mechanical Engineering, University of Arizona, 1130 N Mountain Ave, Tucson, AZ, 85721, USA.

出版信息

Sci Rep. 2018 Jun 13;8(1):9056. doi: 10.1038/s41598-018-26872-w.

Abstract

In recent years, nanoporous Si films have been widely studied for thermoelectric applications due to the low cost and earth abundance of Si. Despite many encouraging results, inconsistency still exists among experimental and theoretical studies of reduced lattice thermal conductivity for varied nanoporous patterns. In addition, divergence can also be found among reported data, due to the difference in sample preparation and measurement setups. In this work, systematic measurements are carried out on nanoporous Si thin films with pore pitches on the order of 100 nm, where pores are drilled either by dry etching or a focused ion beam. In addition to thermal conductivity measurements, the specific heat of the nanoporous films is simultaneously measured and agrees with the estimation using bulk values, indicating a negligible change in the phonon dispersion. Without considering coherent phonon transport, the measured thermal conductivity values agree with predictions by frequency-dependent phonon Monte Carlo simulations assuming diffusive pore-edge phonon scattering. In Monte Carlo simulations, an expanded effective pore diameter is used to account for the amorphization and oxidation on real pore edges.

摘要

近年来,由于硅成本低且储量丰富,纳米多孔硅薄膜在热电应用方面得到了广泛研究。尽管取得了许多令人鼓舞的成果,但对于不同纳米多孔结构的晶格热导率降低的实验和理论研究仍存在不一致之处。此外,由于样品制备和测量设置的差异,报道的数据也存在分歧。在这项工作中,对孔径间距约为100nm的纳米多孔硅薄膜进行了系统测量,这些孔通过干法蚀刻或聚焦离子束钻孔。除了热导率测量外,还同时测量了纳米多孔薄膜的比热容,其与使用体材料值的估计结果一致,表明声子色散变化可忽略不计。在不考虑相干声子输运的情况下,测量的热导率值与假设扩散孔边缘声子散射的频率相关声子蒙特卡罗模拟预测结果一致。在蒙特卡罗模拟中,使用扩大的有效孔径来考虑实际孔边缘的非晶化和氧化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1b56/5998148/8ab3ba819113/41598_2018_26872_Fig1_HTML.jpg

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