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体相异质结有机太阳能电池中分子间无序与分子内无序呈负相关。

Negative Correlation between Intermolecular vs Intramolecular Disorder in Bulk-Heterojunction Organic Solar Cells.

机构信息

Department of Materials Science and Engineering , Monash University , Wellington Road , Clayton , VIC 3800 , Australia.

Optoelectronics Group, Cavendish Laboratory , University of Cambridge , Cambridge CB3 0HE , U.K.

出版信息

ACS Appl Mater Interfaces. 2018 Dec 26;10(51):44576-44582. doi: 10.1021/acsami.8b14628. Epub 2018 Dec 11.

Abstract

By varying the concentration of a solvent additive, we demonstrate the modulation of intermolecular (donor/acceptor (D/A) interface) and intramolecular (bulk) disorder in blends of the low-band gap polymer poly[2,6-(4,4-bis(2-ethylhexyl)-4 H-cyclopental[2,1- b;3,4- b']-dithiophene)- alt-4,7-(2,1,3-benzothiadiazole)] (PCPDTBT) blended with [6,6]-phenyl-C-butyric acid methyl ester (PCBM). Using the solvent additive concentration of 1,8-diiodooctane (DIO) in the host-processing solvent, the disorder in the bulk and at the interface is studied in terms of Urbach energy, electroluminescence (EL) broadening, and EL quantum efficiency (EL). The Urbach energy varies from 80 to 39 meV for bulk and 39 to 51 meV for D/A interface. An interesting feature is that changes in the Urbach energy of the D/A interface are opposite to those of the Urbach energy of bulk; i.e., the disorder at the D/A interface increases as the disorder in the bulk decreases with increase in DIO concentration. Our study evidently suggested a negative correlation between intermolecular and intramolecular property in a bulk-heterojunction solar cell. Furthermore, scanning photocurrent microscopy measurements show that the effective hole transport length is double in magnitude for cells processed from 3 vol % DIO in comparison to that in cells processed from 0 vol %. This increase in effective hole transport length is explained by an increase in the delocalization of the electronic states involved in charge transport, as confirmed by dark J- V knee voltage,  J and E measurements. Henceforth, we provide a functional relationship between the additive-induced bulk-heterojunction morphology and the optoelectronic properties of PCPDTBT-based solar cells.

摘要

通过改变溶剂添加剂的浓度,我们展示了在低带隙聚合物聚[2,6-(4,4-双(2-乙基己基)-4 H-环戊并[2,1- b;3,4- b']-二噻吩)-交替-4,7-(2,1,3-苯并噻二唑)](PCPDTBT)与[6,6]-苯基-C-丁酸甲酯(PCBM)的混合物中,分子间(给体/受体(D/A)界面)和分子内(体相)无序的调制。使用主体加工溶剂中的 1,8-二碘辛烷(DIO)溶剂添加剂浓度,从 Urbach 能量、电致发光(EL)展宽和 EL 量子效率(EL)方面研究了体相和界面的无序。体相和 D/A 界面的 Urbach 能量分别从 80 到 39 meV 和 39 到 51 meV 变化。一个有趣的特点是,D/A 界面的 Urbach 能量变化与体相的 Urbach 能量变化相反;即,随着 DIO 浓度的增加,D/A 界面的无序增加,而体相的无序减少。我们的研究显然表明,在体异质结太阳能电池中,分子间和分子内性质之间存在负相关。此外,扫描光电流显微镜测量表明,与从 0 体积% DIO 处理的电池相比,从 3 体积% DIO 处理的电池的有效空穴传输长度增加了一倍。这种有效空穴传输长度的增加是通过参与电荷传输的电子态的离域增加来解释的,这一点得到了暗 J-V 膝电压、J 和 E 测量的证实。因此,我们提供了添加剂诱导的体异质结形态与基于 PCPDTBT 的太阳能电池的光电性能之间的功能关系。

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