Micron School of Materials Science and Engineering, Boise State University, Boise, ID 83725, United States.
Department of Mechanical and Biomedical Engineering, Boise State University, Boise, ID 83725, United States.
Sci Rep. 2016 Sep 12;6:33135. doi: 10.1038/srep33135.
Screen printing allows for direct conversion of thermoelectric nanocrystals into flexible energy harvesters and coolers. However, obtaining flexible thermoelectric materials with high figure of merit ZT through printing is an exacting challenge due to the difficulties to synthesize high-performance thermoelectric inks and the poor density and electrical conductivity of the printed films. Here, we demonstrate high-performance flexible films and devices by screen printing bismuth telluride based nanocrystal inks synthesized using a microwave-stimulated wet-chemical method. Thermoelectric films of several tens of microns thickness were screen printed onto a flexible polyimide substrate followed by cold compaction and sintering. The n-type films demonstrate a peak ZT of 0.43 along with superior flexibility, which is among the highest reported ZT values in flexible thermoelectric materials. A flexible thermoelectric device fabricated using the printed films produces a high power density of 4.1 mW/cm(2) with 60 °C temperature difference between the hot side and cold side. The highly scalable and low cost process to fabricate flexible thermoelectric materials and devices demonstrated here opens up many opportunities to transform thermoelectric energy harvesting and cooling applications.
丝网印刷可将热电纳米晶体直接转化为柔性能量收集器和冷却器。然而,由于难以合成高性能的热电油墨以及印刷薄膜的密度和电导率较差,通过印刷获得具有高品质因数 ZT 的柔性热电材料是一项艰巨的挑战。在这里,我们通过使用微波刺激的湿化学方法合成的基于碲化铋纳米晶的油墨进行丝网印刷,展示了高性能的柔性薄膜和器件。数十微米厚的热电薄膜被丝网印刷到柔性聚酰亚胺基底上,然后进行冷压和烧结。n 型薄膜表现出 0.43 的峰值 ZT,同时具有出色的柔韧性,这是柔性热电材料中报道的最高 ZT 值之一。使用印刷薄膜制造的柔性热电器件在热侧和冷侧之间产生 60°C 的温差时,可产生 4.1 mW/cm² 的高功率密度。这里展示的用于制造柔性热电材料和器件的高可扩展性和低成本工艺为热电能量收集和冷却应用带来了许多机会。