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Thermal Transport Study on Nanoslot-Patterned Thin Films

机译:纳米漆图案薄膜的热运输研究

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Nanoporous thin films have been extensively studied for their potential applications such as thermoelectrics and thermal management. Different from the popular cylindrical through-film pores, a novel nanoslot pattern design is investigated in this work to achieve better performance in thermal insulation, in-plane thermal anisotropy, and thermoelectrics. In this nanoslot pattern, rectangular pores, or "nanoslots", are patterned in periodic rows with a narrow neck width between adjacent nanoslots within the same row. Such a narrow neck is the geometric constriction for the phonon transport, resulting in a largely reduced lattice thermal conductivity along the direction perpendicular to the nanoslot rows. In addition, the adjacent rows of nanoslots can also be arranged in an offset manner to further reduce the in-plane thermal conductivity along the same direction, eventually achieving a very high in-plane thermal conductivity anisotropy. Along another line, although the thermal transport is severely suppressed by the nanoslot pattern, the bulk-like electron transport can be largely intact due to the much shorter electron mean free paths compared with the neck width. As a result, the thermoelectric performance can be improved. In this work, frequency-dependent phonon Monte Carlo simulations are utilized to investigate the in-plane thermal conductivity anisotropy of the nanoslot patterns with a maximum room-temperature anisotropy of 37.5 among investigated patterns. Analytical models are also derived to easily predict thermal conductivity and thermoelectric performances. With a neck width reduced to 5 nm, the computed thermoelectric figure of merit can be improved to 0.58 at 1100 K. Potential applications of such nanoslot patterns, such as thermal insulations are heat guides, will also be discussed.
机译:已经广泛地研究了纳米多孔薄膜,用于它们的潜在应用,例如热电和热管理。与流行的圆柱形通膜孔不同,在这项工作中研究了一种新的纳米漆图案设计,以实现在隔热,面内热各向异性和热电上的更好性能。在该纳米圈图案中,矩形孔或“纳米辊”,在同一行内的相邻纳米块之间具有窄的颈部宽度的周期性行。这种窄颈是声子传输的几何收缩,导致沿垂直于纳米卷行的方向的晶格导热率大。另外,相邻行的纳米块也可以以偏移方式布置,以进一步降低沿相同方向的面内导热率,最终实现非常高的面内导热率各向异性。沿着另一条线,尽管通过纳米卷图案严重抑制了热传输,但是由于与颈部宽度相比的电气平均值的更短的电子均值,因此可以在很大程度上完好地完善。结果,可以提高热电性能。在这项工作中,利用频率依赖性声音蒙特卡罗模拟来研究纳米曲面图案的面内导热率各向异性,在调查的图案中具有37.5的最高室温各向异性。还导出分析模型以容易地预测导热性和热电性能。颈部宽度减小到5nm,计算的热电值可以在1100k下提高到0.58。也将讨论这种纳米卷图案的潜在应用,例如热绝缘是热引导件。

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