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首页> 外文期刊>Nano Energy >10.20% Efficiency polymer solar cells via employing bilaterally hole -cascade diazaphenanthrobisthiadiazole polymer donors and electron -cascade indene-C70 bisadduct acceptor
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10.20% Efficiency polymer solar cells via employing bilaterally hole -cascade diazaphenanthrobisthiadiazole polymer donors and electron -cascade indene-C70 bisadduct acceptor

机译:通过使用双侧空穴-级联二氮杂蒽并噻二唑聚合物供体和电子-级联茚-C70双加合物受体,可提高10.20%的聚合物太阳能电池的效率

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A series of crystalline copolymers, PBDTSA-DAPT, PBDTTA-DAPT and PBDTTS-DAFT, have been designed towards the application of multi-blend polymer solar cells (PSCs). These copolymers exhibit low-lying HOMO levels by incorporating benzodithiophene (BDT) donor and 9,10-diazaphenanthro[3,4-c;5,6-c]bis [1,2,5]thiadiazole (DAPT) acceptor in the main chains. They were added as the hole-cascade polymer donors into the PTB7: PC71BM blend. When adding 10 wt% of the resulting copolymers, the PCEs of 8.59%, 9.03% and 8.91% were achieved for PBDTSA-DAPT-, PBDTTA-DAPT- and PBDTTS-DAPT-based ternary devices, respectively. In order to further elevate the performance of PBDTTA-DAPT devices, indene-C70 bisadduct (IC(70)BA) was also incorporated into the PBDTTA-DAPT-based ternary blend. This cascade band structure would give steadier energy level alignment and afford more charge transfer channels, which could promote simultaneously both the hole and electron transfer. When adding 5 wt% of IC70BA, the quaternary PSC device showed a top PCE of 10.20%. This PCE value is the best efficiency for PTB7 based PSCs reported so far. Our work not only demonstrates a design strategy for high performance hole cascade polymer donors in multi-blend PSCs, but also provides a first quaternary strategy with bilateral cascade energy band structures to increase the V-oc, J(sc) and FF simultaneously for high efficient organic solar cell applications. (C) 2016 Elsevier Ltd. All rights reserved.
机译:一系列结晶共聚物,PBDTSA-DAPT,PBDTTA-DAPT和PBDTTS-DAFT,已被设计用于多掺混聚合物太阳能电池(PSC)的应用。这些共聚物通过将苯并二噻吩(BDT)供体和9,10-二氮杂蒽并[3,4-c; 5,6-c]双[1,2,5]噻二唑(DAPT)受体结合在主体中而显示出较低的HOMO水平链。将它们作为空穴级联聚合物供体添加到PTB7:PC71BM共混物中。当添加10wt%的所得共聚物时,基于PBDTSA-DAPT-,PBDTTA-DAPT-和PBDTTS-DAPT的三元装置的PCE分别达到8.59%,9.03%和8.91%。为了进一步提高PBDTTA-DAPT装置的性能,还将茚-C70双加合物(IC(70)BA)掺入了基于PBDTTA-DAPT的三元共混物中。这种级联能带结构将提供更稳定的能级对准并提供更多的电荷转移通道,这可同时促进空穴和电子转移。当添加5 wt%的IC70BA时,四元PSC器件的最高PCE为10.20%。迄今为止,该PCE值是基于PTB7的PSC的最佳效率。我们的工作不仅演示了多共混PSC中高性能空穴级联聚合物供体的设计策略,而且还提供了具有双边级联能带结构的第一个四元策略,以同时提高V-oc,J(sc)和FF高效的有机太阳能电池应用。 (C)2016 Elsevier Ltd.保留所有权利。

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