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堆叠型苝二酰亚胺作为高效非富勒烯受体在有机光伏中的一种替代策略。

Slip-stacked perylenediimides as an alternative strategy for high efficiency nonfullerene acceptors in organic photovoltaics.

机构信息

Department of Chemistry and the Materials Research Center, and ‡Department of Materials Science and Engineering and the Materials Research Center, The Argonne-Northwestern Solar Energy Research Center, Northwestern University , 2145 Sheridan Road, Evanston, Illinois 60208, United States.

出版信息

J Am Chem Soc. 2014 Nov 19;136(46):16345-56. doi: 10.1021/ja508814z. Epub 2014 Nov 10.

Abstract

Perylenediimide (PDI)-based acceptors offer a potential replacement for fullerenes in bulk-heterojunction (BHJ) organic photovoltaic cells (OPVs). The most promising efforts have focused on creating twisted PDI dimers to disrupt aggregation and thereby suppress excimer formation. Here, we present an alternative strategy for developing high-performance OPVs based on PDI acceptors that promote slip-stacking in the solid state, thus preventing the coupling necessary for rapid excimer formation. This packing structure is accomplished by substitution at the PDI 2,5,8,11-positions ("headland positions"). Using this design principle, three PDI acceptors, N,N-bis(n-octyl)-2,5,8,11-tetra(n-hexyl)-PDI (Hexyl-PDI), N,N-bis(n-octyl)-2,5,8,11-tetraphenethyl-PDI (Phenethyl-PDI), and N,N-bis(n-octyl)-2,5,8,11-tetraphenyl-PDI (Phenyl-PDI), were synthesized, and their molecular and electronic structures were characterized. They were then blended with the donor polymer PBTI3T, and inverted OPVs of the structure ITO/ZnO/Active Layer/MoO3/Ag were fabricated and characterized. Of these, 1:1 PBTI3T:Phenyl-PDI proved to have the best performance with Jsc = 6.56 mA/cm(2), Voc = 1.024 V, FF = 54.59%, and power conversion efficiency (PCE) = 3.67%. Devices fabricated with Phenethyl-PDI and Hexyl-PDI have significantly lower performance. The thin film morphology and the electronic and photophysical properties of the three materials are examined, and although all three materials undergo efficient charge separation, PBTI3T:Phenyl-PDI is found to have the deepest LUMO, intermediate crystallinity, and the most well-mixed domains. This minimizes geminate recombination in Phenyl-PDI OPVs and affords the highest PCE. Thus, slip-stacked PDI strategies represent a promising approach to fullerene replacements in BHJ OPVs.

摘要

基于苝二酰亚胺(PDI)的受体为体异质结(BHJ)有机光伏电池(OPV)提供了一种替代富勒烯的潜在选择。最有前途的努力集中在创建扭曲的 PDI 二聚体以破坏聚集,从而抑制激基复合物的形成。在这里,我们提出了一种基于 PDI 受体的高性能 OPV 的替代策略,该策略促进了在固态中的滑动堆积,从而防止了形成快速激基复合物所需的偶联。这种堆积结构是通过在 PDI 的 2、5、8、11-位(“海角位置”)取代来实现的。使用此设计原理,合成了三个 PDI 受体,N,N-双(正辛基)-2,5,8,11-四(正己基)-PDI(Hexyl-PDI),N,N-双(正辛基)-2,5,8,11-四(苯乙基)-PDI(Phenethyl-PDI)和 N,N-双(正辛基)-2,5,8,11-四(苯基)-PDI(Phenyl-PDI),并对其分子和电子结构进行了表征。然后将它们与给体聚合物 PBTI3T 共混,并制备了结构为 ITO/ZnO/活性层/MoO3/Ag 的倒置 OPV 并对其进行了表征。其中,1:1 PBTI3T:Phenyl-PDI 的性能最佳,Jsc = 6.56 mA/cm2,Voc = 1.024 V,FF = 54.59%,功率转换效率(PCE)= 3.67%。使用 Phenethyl-PDI 和 Hexyl-PDI 制备的器件性能明显较低。研究了三种材料的薄膜形态以及电子和光物理性质,尽管所有三种材料都经历了有效的电荷分离,但发现 PBTI3T:Phenyl-PDI 具有最深的 LUMO,中等结晶度和最均匀的混合域。这最小化了 Phenyl-PDI OPV 中的复合并提供了最高的 PCE。因此,滑动堆积的 PDI 策略代表了 BHJ OPV 中富勒烯替代品的一种很有前途的方法。

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