Department of Chemistry and Biochemistry, California NanoSystems Institute, University of California, Los Angeles, CA, 90095, USA.
Department of Mechanical and Biomedical Engineering, Boise State University, ID, 83725, USA.
Adv Mater. 2017 Jun;29(21). doi: 10.1002/adma.201606662. Epub 2017 Mar 29.
A solid-state thermoelectric device is attractive for diverse technological areas such as cooling, power generation and waste heat recovery with unique advantages of quiet operation, zero hazardous emissions, and long lifetime. With the rapid growth of flexible electronics and miniature sensors, the low-cost flexible thermoelectric energy harvester is highly desired as a potential power supply. Herein, a flexible thermoelectric copper selenide (Cu Se) thin film, consisting of earth-abundant elements, is reported. The thin film is fabricated by a low-cost and scalable spin coating process using ink solution with a truly soluble precursor. The Cu Se thin film exhibits a power factor of 0.62 mW/(m K ) at 684 K on rigid Al O substrate and 0.46 mW/(m K ) at 664 K on flexible polyimide substrate, which is much higher than the values obtained from other solution processed Cu Se thin films (<0.1 mW/(m K )) and among the highest values reported in all flexible thermoelectric films to date (≈0.5 mW/(m K )). Additionally, the fabricated thin film shows great promise to be integrated with the flexible electronic devices, with negligible performance change after 1000 bending cycles. Together, the study demonstrates a low-cost and scalable pathway to high-performance flexible thin film thermoelectric devices from relatively earth-abundant elements.
固态热电设备在冷却、发电和余热回收等多个技术领域具有独特的优势,例如静音运行、零危险排放和长寿命。随着柔性电子和微型传感器的快速发展,低成本的柔性热电能量收集器作为一种潜在的电源受到了高度的关注。在此,报告了一种由丰富元素组成的柔性碲化铜(CuSe)薄膜。该薄膜是通过使用具有真正可溶性前体的油墨溶液通过低成本和可扩展的旋涂工艺制造的。在刚性 Al2O3 衬底上,CuSe 薄膜在 684 K 时的功率因子为 0.62 mW/(m K),在柔性聚酰亚胺衬底上在 664 K 时为 0.46 mW/(m K),远高于其他溶液处理的 CuSe 薄膜(<0.1 mW/(m K))的值,并且是迄今为止所有柔性热电薄膜中报道的最高值之一(≈0.5 mW/(m K))。此外,所制备的薄膜在与柔性电子设备集成方面具有很大的应用潜力,在经过 1000 次弯曲循环后,性能几乎没有变化。总之,该研究展示了一种从相对丰富的元素制备高性能柔性薄膜热电设备的低成本和可扩展途径。