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Pronounced Cosolvent Effects in Polymer:Polymer Bulk Heterojunction Solar Cells with Sulfur-Rich Electron-Donating and Imide-Containing Electron-Accepting Polymers

机译:聚合物中显着的助溶剂效应:具有富硫电子给体和含酰亚胺电子接受聚合物的聚合物本体异质结太阳能电池

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The performance of solar cells with a polymer:polymer bulk heterojunction (BHJ) structure, consisting of poly[4,8-bis(5-(2-ethylhexyl)thiophen-2-yl)benzo[1,2-b:4,5-b']dithiophene-alt-3-fluorothieno[3,4-b]thiophene-2-carboxylate] (PTB7-Th) donor and poly[[N,N'-bis(2-octyldodecyl)-naphthalene-1,4,5,8-bis(dicarboximide)-2,6-diyl]-alt-5,5'-(2,2'-bithiophene)] (P(NDI2OD-T2)) acceptor polymers, was investigated as a function of cosolvent (p-xylene:chlorobenzene (pXL:CB)) composition ratio. A remarkable efficiency improvement (similar to 38%) was achieved by spin-coating the photoactive blend layer from pXL:CB = 80:20 (volume) rather than pXL alone, but the efficiency then decreased when the CB content increased further to pXL:CB = 60:40. The improved efficiency was correlated with a particular PTB7-Th:P(NDI2OD-T2) donor-acceptor blend nanostructure, evidenced by a fiber-like surface morphology, a red-shifted optical absorption, and enhanced PL quenching. Further device optimization for pXL:CB = 80:20 films yielded a power conversion efficiency of similar to 5.4%. However, these devices showed very poor stability (similar to 15 min for a 50% reduction in initial efficiency), owing specifically to degradation of the PTB7-Th donor-component. Replacing PTB7-Th with a more stable donor polymer will be essential for any application potential to be realized.
机译:具有聚合物:聚合物本体异质结(BHJ)结构的太阳能电池的性能,该结构由聚[4,8-双(5-(2-(乙基乙基己基)噻吩-2-基)苯并[1,2-b:4, 5-b']二噻吩-alt-3-氟噻吩并[3,4-b]噻吩-2-羧酸](PTB7-Th)供体和聚[[N,N'-双(2-辛基十二烷基)-萘-1]研究了4,4,5,8-双(二​​甲叉酰亚胺)-2,6-二基] -alt-5,5'-(2,2'-联噻吩)](P(NDI2OD-T2))受体聚合物助溶剂的功能(对二甲苯:氯苯(pXL:CB))组成比。通过从pXL:CB = 80:20(体积)而不是单独的pXL旋涂光敏共混物层,可以显着提高效率(约38%),但是当CB含量进一步增加至pXL时,效率随后下降: CB = 60:40。改进的效率与特定的PTB7-Th:P(NDI2OD-T2)供体-受体共混物纳米结构相关,这由纤维状表面形态,红移光学吸收和增强的PL猝灭证明。对于pXL:CB = 80:20薄膜的进一步器件优化产生了约5.4%的功率转换效率。但是,这些设备显示出非常差的稳定性(类似于15分钟,初始效率降低了50%),这归因于PTB7-Th供体组件的降解。用更稳定的供体聚合物代替PTB7-Th对于实现任何应用潜力至关重要。

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