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Compliant and stretchable thermoelectric coils for energy harvesting in miniature flexible devices

机译:符合标准且可拉伸的热电线圈用于小型柔性设备中的能量收集

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摘要

With accelerating trends in miniaturization of semiconductor devices, techniques for energy harvesting become increasingly important, especially in wearable technologies and sensors for the internet of things. Although thermoelectric systems have many attractive attributes in this context, maintaining large temperature differences across the device terminals and achieving low–thermal impedance interfaces to the surrounding environment become increasingly difficult to achieve as the characteristic dimensions decrease. Here, we propose and demonstrate an architectural solution to this problem, where thin-film active materials integrate into compliant, open three-dimensional (3D) forms. This approach not only enables efficient thermal impedance matching but also multiplies the heat flow through the harvester, thereby increasing the efficiencies for power conversion. Interconnected arrays of 3D thermoelectric coils built using microscale ribbons of monocrystalline silicon as the active material demonstrate these concepts. Quantitative measurements and simulations establish the basic operating principles and the key design features. The results suggest a scalable strategy for deploying hard thermoelectric thin-film materials in harvesters that can integrate effectively with soft materials systems, including those of the human body.
机译:随着半导体器件小型化的加速趋势,能量收集技术变得越来越重要,尤其是在可穿戴技术和物联网传感器中。尽管热电系统在这种情况下具有许多吸引人的属性,但随着特征尺寸的减小,在设备端子之间保持较大的温差并实现与周围环境的低热阻抗接口变得越来越困难。在这里,我们提出并演示了针对此问题的体系结构解决方案,其中薄膜活性材料集成为顺应性的开放式3D(3D)形式。这种方法不仅可以实现有效的热阻抗匹配,而且可以使流经收集器的热量倍增,从而提高了功率转换的效率。使用单晶硅的微型带作为活性材料构建的3D热电线圈的互连阵列展示了这些概念。定量测量和模拟建立了基本的工作原理和关键设计特征。结果表明,在收割机中部署硬热电薄膜材料的可扩展策略可以与软材料系统(包括人体系统)有效集成。

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