Key Laboratory of Advanced Civil Engineering Materials, Ministry of Education, School of Materials Science & Engineering , Tongji University , 4800 Caoan Road , Shanghai 201804 , China.
Materials Characterization and Preparation Center and Department of Physics , Southern University of Science and Technology , Shenzhen 518055 , China.
ACS Appl Mater Interfaces. 2019 Apr 3;11(13):12819-12829. doi: 10.1021/acsami.9b01718. Epub 2019 Mar 22.
Herein, poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS) coated Cu Se (PC-Cu Se ) nanowires are prepared by a wet-chemical method, and PEDOT:PSS/Cu Se nanocomposite films on flexible nylon membrane are fabricated by vacuum assisted filtration and then cold-pressing. XRD analysis reveals that the Cu Se with different compositions can be obtained by adjusting the nominal Cu/Se molar ratios of their sources. For the composite film starting from a Cu/Se nominal molar ratio of 3, an optimized power factor of ∼270.3 μW/mK is obtained at 300 K. Moreover, the film exhibits a superior flexibility with 85% of the original power factor retention after bending for 1000 cycles around a rod with a diameter of 5 mm. TEM and STEM observations of the focused ion beam (FIB) prepared sample reveal that it is mainly attributed to a synergetic effect of the nylon membrane and the composite film with nanoporous structure formed by the intertwined nanowires, besides the intrinsic flexibility of nylon. Finally, a thermoelectric prototype composed of nine legs of the optimized hybrid film generates a voltage and a maximum power of 15 mV and 320 nW, respectively, at a temperature gradient of 30 K. This work offers an effective approach for high TE performance inorganic/polymer composite film for flexible TE devices.
在此,通过湿化学法制备了聚(3,4-亚乙基二氧噻吩):聚(苯乙烯磺酸盐)(PEDOT:PSS)包覆的 Cu Se (PC-Cu Se )纳米线,并通过真空辅助过滤和冷压制备了 PEDOT:PSS/Cu Se 纳米复合材料薄膜在柔性尼龙膜上。XRD 分析表明,通过调整其源的名义 Cu/Se 摩尔比,可以获得不同组成的 Cu Se 。对于起始于 Cu/Se 名义摩尔比为 3 的复合膜,在 300 K 时获得了约 270.3 μW/mK 的优化功率因子。此外,该薄膜具有优异的柔韧性,在直径为 5 mm 的棒上弯曲 1000 次后,其原始功率因子保留率为 85%。聚焦离子束(FIB)制备样品的 TEM 和 STEM 观察表明,除了尼龙本身的柔韧性外,主要归因于尼龙膜和由交织纳米线形成的具有纳米多孔结构的复合膜的协同效应。最后,由优化的混合薄膜的九个腿组成的热电原型在 30 K 的温度梯度下产生 15 mV 的电压和 320 nW 的最大功率。这项工作为用于柔性热电器件的高性能无机/聚合物复合薄膜提供了一种有效的方法。