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Room temperature rectification in tapered-channel thermal diodes through nanoscale confinement-induced liquid-solid phase change

机译:通过纳米尺度限制诱导的液固相变圆锥沟道热二极管室温整流

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摘要

Designing thermal diodes is attracting a considerable amount of interest recently due to the wide range of applications and potentially high impact in the transportation and energy industries. Advances in nanoscale synthesis and characterization are opening new avenues for design using atomic-level tools to take advantage of materials properties in confined volumes. In this paper, we demonstrate using advanced modeling and simulation the rectification properties of tapered-channel thermal diodes relying on asymmetric heat flow brought about by thermal conductivity differences between the liquid and solid phases of suitably selected phase-change materials (PCM). Our prototypical design considers Ga as PCM and anodized alumina as the structural material. First, we use a thresholding scheme to solve a Stefan problem in the device channel to study the interface shape and the hysteresis of the phase transformation when the temperature gradient is switched. We then carry out finite-element simulations to study the effect of several geometric parameters on diode efficiency, such as channel length as aspect ratio. Our analysis establishes physical limits on rectification efficiencies and point to design improvements using several materials to assess the potential of these devices as viable thermal diodes. Finally, we demonstrate the viability of proof-of-concept device fabrication by using a non-conformal atomic layer deposition process in anodic alumina membranes infiltrated with Ga metal.
机译:设计热二极管最近吸引了相当数量的利益,由于各种应用以及在运输和能源行业的潜在高影响力。纳米级合成和表征的进步正在使用原子级工具对设计进行新的途径,以利用狭窄的体积中的材料特性。在本文中,我们用先进的建模和模拟证明锥形通道热二极管的整流特性,依赖于液体和固态相变材料(PCM)的液体和固相之间的热导流差异所带来的不对称热流。我们的原型设计将GA作为PCM和阳极氧化铝作为结构材料。首先,我们使用阈值方案来解决设备通道中的Stefan问题,以研究界面形状和当切换温度梯度时相变的滞后。然后,我们执行有限元模拟,以研究几何参数对二极管效率的影响,例如信道长度为纵横比。我们的分析建立了整改效率的物理限制,并指出使用多种材料的设计改进,以评估这些装置的潜力作为可行的热二极管。最后,我们通过使用与Ga金属渗透渗透的阳极氧化铝膜中的非共形原子层沉积方法来证明概念验证装置制造的可行性。

著录项

  • 来源
    《Journal of Applied Physics》 |2021年第7期|075103.1-075103.11|共11页
  • 作者单位

    Department of Mathematics University of California Los Angeles Los Angeles California 90095 USA;

    Department of Materials Science and Engineering University of California Los Angeles Los Angeles California 90095 USA;

    Department of Materials Science and Engineering University of California Los Angeles Los Angeles California 90095 USA;

    Department of Chemical and Biochemical Engineering University of California Los Angeles Los Angeles California 90095 USA;

    Department of Materials Science and Engineering University of California Los Angeles Los Angeles California 90095 USA;

    Department of Mechanical and Aerospace Engineering University of California Los Angeles Los Angeles California 90095 USA;

    Department of Chemical and Biochemical Engineering University of California Los Angeles Los Angeles California 90095 USA;

    Department of Chemistry and Biochemistry University of California Los Angeles Los Angeles California 90095 USA;

    Department of Mathematics University of California Los Angeles Los Angeles California 90095 USA;

    Department of Mechanical and Aerospace Engineering University of California Los Angeles Los Angeles California 90095 USA;

    Department of Materials Science and Engineering University of California Los Angeles Los Angeles California 90095 USA Department of Mechanical and Aerospace Engineering University of California Los Angeles Los Angeles California 90095 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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