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Tuning the Thermoelectric Properties of a Conducting Polymer through Blending with Open-Shell Molecular Dopants

机译:通过与开壳分子掺杂剂共混来调节导电聚合物的热电性能

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Polymer thermoelectric devices are emerging as promising platforms by which to convert thermal gradients into electricity directly, and poly(3,4-ethylene dioxythiophene) doped with poly(styrenesulfonate) (PEDOT:PSS) is a leading candidate in a number of these thermoelectric modules. Here, we implement the stable radical-bearing small molecule 4-hydroxy-2,2,6,6-tetramethylpiperidin-l-oxyl (TEMPO-OH) as an intermolecular dopant in order to tune the electrical conductivity, thermopower, and power factor of PEDOT:PSS thin films. Specifically, we demonstrate that, at moderate loadings (similar to 2%, by weight) of the open-shell TEMPO-OH molecule, the thermopower of PEDOT:PSS thin films is increased without a marked decline in the electrical conductivity of the material. This effect, in turn, allows for an optimization of the power factor in the composite organic materials, which is a factor of 2 greater than the pristine PEDOT:PSS thin films. Furthermore, because the loading of TEMPO-OH is relatively low, we observe that there is little change in either the crystalline nature or surface topography of the composite films relative to the pristine PEDOT:PSS films. Instead, we determine that the increase in the thermopower is due to the presence of stable radical sites within the PEDOT:PSS that persist despite the highly acidic environment that occurs due to the presence of the poly(styrenesulfonate) moiety. Additionally, the oxidation-reduction-active (redox-active) nature of the TEMPO-OH small molecules provides a means by which to filter charges of different energy values. Therefore, these results demonstrate that a synergistic combination of an open-shell species and a conjugated polymer allows for enhanced thermoelectric properties in macromolecular systems, and as such, it offers the promise of a new design pathway in polymer thermoelectric materials.
机译:聚合物热电器件正在成为有前途的平台,通过该平台可以将热梯度直接转换为电,并且掺杂有聚苯乙烯磺酸盐(PEDOT:PSS)的聚(3,4-乙撑二氧噻吩)是许多此类热电模块中的领先者。在这里,我们将稳定的带有自由基的小分子4-羟基-2,2,6,6-四甲基哌啶-1-氧基(TEMPO-OH)作为分子间掺杂剂,以调节电导率,热功率和功率因数PEDOT:PSS薄膜的制造。具体而言,我们证明,在开壳TEMPO-OH分子的中等负载(按重量计约2%)下,PEDOT:PSS薄膜的热功率会增加,而材料的电导率不会明显下降。反过来,这种效果可以优化复合有机材料中的功率因数,该功率因数比原始的PEDOT:PSS薄膜大2倍。此外,由于TEMPO-OH的负载量相对较低,因此我们观察到,与原始PEDOT:PSS膜相比,复合膜的晶体性质或表面形貌几乎没有变化。取而代之的是,我们确定热功率的增加是由于PEDOT:PSS中存在稳定的自由基位点,尽管由于聚(苯乙烯磺酸盐)部分的存在而发生了高酸性环境,该位点仍然存在。此外,TEMPO-OH小分子的氧化还原活性(氧化还原活性)性质提供了一种过滤不同能量值电荷的方法。因此,这些结果表明,开壳物质和共轭聚合物的协同组合可增强大分子系统中的热电性能,因此,它有望为聚合物热电材料提供新的设计途径。

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