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首页> 外文期刊>Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology >Photochemical stability of conjugated polymers, electron acceptors and blends for polymer solar cells resolved in terms of film thickness and absorbance
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Photochemical stability of conjugated polymers, electron acceptors and blends for polymer solar cells resolved in terms of film thickness and absorbance

机译:共轭聚合物,电子受体和聚合物太阳能电池共混物的光化学稳定性在膜厚和吸光度方面得到解决

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Photochemical degradation at 1 sun under AM1.5G illumination was performed on six conjugated polymers and five different electron acceptors. Additionally, the respective polymer:PC_(60)BM and P3HT:electron acceptor blends were studied, and all degradations were resolved in terms of film thickness and absorbance. A fully automated degradation setup allowed for inclusion of in excess of 1000 degradations in this study to enable a discussion of reliability of the technique. Degradation rates were found to increase exponentially with decreasing film absorbance for all materials. The relative stabilities within each material group were found to vary for both the pure polymers and the blends. The stability ranking between.the materials of the pure polymers was found to be similar to the ranking for their respective blends, implying that the photochemical stability of a pure polymer is a good measure of its associated blend stability. Different electron acceptors were found to stabilize P3HT decreasingly with decreasing donor-acceptor LUMO-LUMO gap. Destabilization of P3HT was observed in the case of the electron acceptor ICBA. Additionally, the decreased stabilization of P3HT by high LUMO electron acceptors poses a challenge to solar cell encapsulation if these materials are to be of commercial interest. The presented method is generally applicable to all types of organic materials to assess photochemical stabilities. The presented results of conjugated polymers demonstrate that this is a powerful tool for conjugated polymer stability assessment if the results are interpreted correctly.
机译:在AM1.5G光照下,在1个太阳下,对6种共轭聚合物和5种不同的电子受体进行了光化学降解。此外,研究了各自的聚合物:PC_(60)BM和P3HT:电子受体共混物,并根据膜厚度和吸光度解决了所有降解问题。全自动降解设置允许在本研究中包含超过1000个降解,从而可以讨论该技术的可靠性。发现对于所有材料,降解速率都随着膜吸收率的降低而呈指数增加。发现每种材料组内的相对稳定性对于纯聚合物和共混物都是变化的。发现纯聚合物的材料之间的稳定性等级与它们各自的共混物的等级相似,这意味着纯聚合物的光化学稳定性是与其相关的共混物稳定性的良好量度。发现不同的电子受体随着供体-受体LUMO-LUMO间隙的减小而使P3HT稳定降低。在电子受体ICBA的情况下,观察到P3HT不稳定。另外,如果要使这些材料具有商业价值,则高LUMO电子受体对P3HT稳定性的降低会给太阳能电池封装带来挑战。提出的方法通常适用于所有类型的有机材料,以评估光化学稳定性。提出的共轭聚合物结果表明,如果正确解释结果,这将是评估共轭聚合物稳定性的有力工具。

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