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Gradual thickness-dependent enhancement of the thermoelectric properties of PEDOT:PSS nanofilms

机译:PEDOT:PSS纳米薄膜热电性能的厚度依赖性逐渐​​增强

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摘要

We have investigated the thickness-dependent change in the thermoelectric properties of nanofilms of the conducting polymer, PEDOT:PSS. Films with varying thickness were prepared by spin coating the polymer solution at different speeds. Because of its relatively facile processing, good electrical conductivity, and environmental stability, PEDOT:PSS is considered to be one of the most promising candidates for application in thermal to electric energy conversion devices. Electrical conductivity is attributed to the enhanced carrier mobility in the ordered chain structures of the polymer. The Seebeck coefficient is influenced by the energy derivative of electronic energy density. This approach can be used to study the dependence of conductivity and the Seebeck coefficient at room temperature with varying film thickness. Both the conductivity and Seebeck coefficient improved with increasing thickness of the polymer nanofilms. This can be attributed to the change in the conformation of PEDOT, which exposes the PEDOT on the surface of the PEDOT:PSS phase. The PEDOT:PSS thin films were characterized by UV-Vis spectroscopy, tapping-mode atomic force microscopy, X-ray photoelectron spectroscopy, and Raman spectroscopy. This study suggests that variation of film thickness is an effective way of improving the thermoelectric properties of PEDOT:PSS.
机译:我们已经研究了导电聚合物纳米膜PEDOT:PSS的热电性能随厚度的变化。通过以不同的速度旋涂聚合物溶液来制备具有不同厚度的膜。由于其相对较容易的加工,良好的导电性和环境稳定性,PEDOT:PSS被认为是在热能至电能转换设备中应用的最有希望的候选者之一。电导率归因于在聚合物的有序链结构中提高的载流子迁移率。塞贝克系数受电子能量密度的能量导数的影响。这种方法可用于研究室温下随着膜厚度变化的电导率和塞贝克系数的依赖性。电导率和塞贝克系数都随着聚合物纳米膜厚度的增加而提高。这可以归因于PEDOT构象的变化,该变化使PEDOT暴露在PEDOT:PSS相的表面上。 PEDOT:PSS薄膜通过紫外-可见光谱,敲击模式原子力显微镜,X射线光电子能谱和拉曼光谱来表征。这项研究表明,改变膜厚是改善PEDOT:PSS热电性能的有效方法。

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