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From Straw to Device Interface: Carboxymethyl‐Cellulose‐Based Modified Interlayer for Enhanced Power Conversion Efficiency of Organic Solar Cells

机译:从稻草到设备接口:基于羧甲基纤维素的改性中间层可提高有机太阳能电池的功率转换效率

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摘要

Advanced interface materials made from petrochemical resources have been extensively investigated for organic solar cells (OSCs) over the past decades. These interface materials have demonstrated excellent performances in OSC devices. However, the limited resources, high‐cost, and non‐ecofriendly nature of petrochemical‐based interface materials restrict their commercial applications. Here, a facile and effective approach to prepare cellulose and its derivatives as a cathode interface layer for OSCs with enhanced performance from rice straw of agroforestry residues is demonstrated. By employing this carboxymethyl cellulose sodium (CMC) into OSCs, a highly efficient inverted OSC is constructed, and a power conversion efficiency (PCE) of 12.01% is realized using poly[(2,6‐(4,8‐bis(5‐(2‐ethyl‐hexyl)‐thiophen‐2‐yl)‐benzo[1,2‐b:4,5‐b′] dithiophene))‐ ‐(5,5‐(1′,3′‐di‐2‐thienyl‐5′,7‐bis(2‐ethylhexyl)benzo[1′,2′‐c: 4′,5′‐c′]dithiophene‐4,8‐dione): 3,9‐bis(2‐methylene‐((3‐(1, 1‐dicyanomethylene)‐6/7‐methyl)‐indanone))‐5,5,11,11‐tetrakis(4‐hexylphenyl)‐dithieno[2,3‐d: 2′,3′‐d′]‐s‐indaceno[1,2‐b: 5, 6‐b′]dithiophene as the active layer, which shows over 9.4% improvement in PCE compared to that of a device without the CMC layer (PCE = 10.98%), especially the enhancement in short‐circuit current. The improved current densities and PCEs are attributed to the reduced work function, enhanced absorption, and improved interfacial contact by using CMC and ZnO as co‐interface. This approach of fabricating interface materials from biorenewable sources for OSCs is simple, scalable, and cost‐effective, representing a promising direction for the development of smart interface and green electronics.
机译:在过去的几十年中,已经广泛地研究了由石油化学资源制成的高级界面材料用于有机太阳能电池(OSC)。这些界面材料在OSC器件中表现出出色的性能。然而,基于石化的界面材料的资源有限,成本高且不环保的特性限制了其商业应用。在这里,展示了一种简便有效的方法,可从稻草中提取农林业残留物来制备纤维素及其衍生物作为OSC阴极界面层,并提高性能。通过将此羧甲基纤维素钠(CMC)应用于OSC,可构建高效的反向OSC,并使用poly [(2,6-(4,8-bis(5- (2-乙基-己基)-噻吩-2-基)-苯并[1,2-b:4,5-b']二噻吩))-(5,5-(1',3'-di-2噻吩基-5',7-双(2-乙基己基)苯并[1',2'-c:4',5'-c']二噻吩-4,8-​​dione):3,9-bis(2-亚甲基-((3-(1,1-二氰基亚甲基)-6 / 7-甲基)-茚满酮))-5,5,11,11-四(4-己基苯基)-二硫代[2,3-d:2′ ,3'-d']-s-indaceno [1,2-b:5,6-b']二噻吩作为活性层,与没有CMC层的设备相比,PCE改善了9.4%以上( PCE = 10.98%),特别是短路电流的增加,电流密度和PCE的改善归因于通过使用CMC和ZnO作为共界面,功函减小,吸收能力增强以及界面接触得以改善。 OSC的生物可再生来源的界面材料简单,可扩展, d经济高效,代表了智能接口和绿色电子产品发展的有希望的方向。

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