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Carbon nanotube thermoelectric devices by direct printing: Toward wearable energy converters

机译:通过直接印刷碳纳米管热电装置:朝向可穿戴能量转换器

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摘要

Thermoelectric devices convert thermal energy to electrical energy and are particularly well-suited for energy harvesting from waste heat. Even as the number of electronic devices used in daily life proliferates, technical advances diminish the average power such devices require to perform a given function. Localized thermal gradients that abound in our living environments, despite having modest energy densities, are therefore becoming increasingly viable and attractive to power such devices. With this motivation, we report the design, fabrication, and characterization of single-wall carbon nanotube thermoelectric devices (CNT-TDs) on flexible polyimide substrates as a basis for wearable energy converters. Our aqueous-solution-based film fabrication process could enable readily scalable, low-cost TDs; here, we demonstrate CNT-hydroxypropyl cellulose (HPC) composite thermoelectric films by aerosol jet printing. The electrical conductivity of the composite films is controlled through the number of CNT/HPC layers printed in combination with control of the annealing conditions. The HPC initially disperses the CNTs in deionized water, the greenest of solvents, and is subsequently partially eliminated from the film by annealing, with concomitant morphological changes that we characterized by TEM. HPC removal is key to obtaining good electrical conductivity (0.94 to 1.10 × 10~5 S/m) and Seebeck coefficients (36 to 43 μV/K). We also report a power factor of 208 μW m~(-1) K~(-2) for a CNT-TD composed of 15 layers of CNT/HPC, promising performance for CNT-based flexible TDs that are deposited from aqueous solution, stable in air, and require no additional doping or sorting processes.
机译:热电装置将热能转换为电能,并且特别适合用于从废热能量收集。即使在日常生活中那繁殖使用的电子设备的数量,技术进步减小的平均功率这样的设备需要来执行给定的功能。 ,那比比皆是,在我们的生活环境中,尽管有适度的能量密度的局部温度梯度,因此被越来越可行和功率器件等的吸引力。与此动机,我们报告的设计,制造,和在柔性聚酰亚胺基板作为可穿戴式能量转换器的基础的单壁碳纳米管的热电装置(CNT-TDS)的表征。我们的基于水的溶液的薄膜制造工艺可以使容易扩展的,低成本的阵;这里,我们证明通过气溶胶喷射印刷CNT-羟丙基纤维素(HPC)复合热电膜。该复合膜的导电性通过与退火条件控制组合印刷CNT / HPC的层数来控制。的HPC最初分散在去离子水中的碳纳米管,溶剂的最环保的,并且随后被部分地从该膜通过退火消除,伴随形态学变化,我们用TEM。 HPC去除的关键是获得良好的导电性(0.94〜1.10×10 -5 S / M)和塞贝克系数(36〜43μV/ K)。我们还报告的208μW米〜(-1)K〜(-2)为CNT / HPC 15层构成的CNT-TD,用于基于CNT的柔性阵有前途的性能,是根据水溶液沉积在功率因数,在空气中稳定,并且不需要额外的掺杂或排序过程。

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  • 来源
    《Applied Physics Letters》 |2021年第17期|173901.1-173901.6|共6页
  • 作者单位

    Department of Electrical Engineering Stanford University Stanford California 94305 USA Stanford Institute for Materials and Energy Sciences SLAC National Accelerator Laboratory Menlo Park California 94025 USA;

    Department of Electrical Engineering Stanford University Stanford California 94305 USA Daihen Corporation Osaka 5328512 Japan;

    Department of Electrical Engineering Stanford University Stanford California 94305 USA;

    Department of Electrical Engineering Stanford University Stanford California 94305 USA;

    Stanford Institute for Materials and Energy Sciences SLAC National Accelerator Laboratory Menlo Park California 94025 USA Department of Materials Science and Engineering Stanford University Stanford California 94305 USA;

    Department of Electrical Engineering Stanford University Stanford California 94305 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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