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通过聚酰亚胺和氮化硅复合材料弥合混合纤维和纱线的热导率与热传递差距

Bridging a Gap in Thermal Conductivity and Heat Transfer in Hybrid Fibers and Yarns via Polyimide and Silicon Nitride Composites.

作者信息

Moradi Ahmadreza, Szewczyk Piotr K, Stachewicz Urszula

机构信息

Faculty of Metals Engineering and Industrial Computer Science, AGH University of Krakow, Krakow, 30-059, Poland.

出版信息

Small. 2023 Dec;19(52):e2305104. doi: 10.1002/smll.202305104. Epub 2023 Aug 8.

DOI:10.1002/smll.202305104
PMID:37553775
Abstract

The pressing issues of the energy crisis and rapid electronics development have sparked a growing interest in the production of highly thermally conductive polymer composites. Due to the challenges related to the poor processability of hybrid materials and filler distribution to achieve high thermal conductivity, electrospinning is employed to create composite nanofibers and yarns using polyimide (PI) and thermally conductive silicon nitride (SiN) nanoparticles. The thermal performance of the individual nanofibers is evaluated using scanning thermal microscopy (SThM), providing significant insights into their heat transfer performance. Next, the nanofibers are applied as coatings on resistance wires to assess the thermal conductivity and insulation properties. Notably, the samples containing 35 wt.% of SiN exhibit a 25% increase in surface temperature. These innovative materials hold great promise as exceptional candidates for smart textiles and thermal management applications, addressing the growing demand for effective heat dissipation and regulation.

摘要

能源危机和电子技术快速发展等紧迫问题引发了人们对高导热聚合物复合材料生产的日益浓厚兴趣。由于混合材料加工性能差以及填料分布难以实现高导热性等挑战,采用静电纺丝法使用聚酰亚胺(PI)和导热氮化硅(SiN)纳米颗粒制备复合纳米纤维和纱线。使用扫描热显微镜(SThM)评估单个纳米纤维的热性能,从而深入了解其传热性能。接下来,将纳米纤维用作电阻丝上的涂层,以评估其导热性和绝缘性能。值得注意的是,含有35 wt.% SiN的样品表面温度升高了25%。这些创新材料作为智能纺织品和热管理应用的优秀候选材料具有巨大潜力,可满足对有效散热和调节日益增长的需求。

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