分子结构对有机太阳能电池中使用的受体和供体聚合物的光化学稳定性的影响†。

IF 5.2 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Suraj Prasad, Zewdneh Genene, Cleber F. N. Marchiori, Shivam Singh, Leif K. E. Ericsson, Ergang Wang, C. Moyses Araujo and Ellen Moons
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引用次数: 0

摘要

有机太阳能电池有限的工作寿命仍然是其商业开发的障碍,这在很大程度上是由于构成光活性层的共轭分子的内在光稳定性较差。在此,我们选择了一系列最先进的供体和受体材料,包括 PBDB-T、Y5、PF5-Y5 和 PYT,研究它们在 AM1.5 模拟环境条件下的光稳定性。我们使用各种光谱技术,包括紫外-可见吸收、傅立叶变换红外(FTIR)以及 X 射线和紫外光电子能谱(XPS 和 UPS),对它们的性质进行了长期监测。我们发现,Y5 和PYT 薄膜的吸收光谱即使在空气中经过 30 小时的光照也几乎保持不变,而 PF5-Y5 和 PBDB-T 薄膜则迅速发生光漂白。在 PBDB-T 与 Y5 和 PF5-Y5 的共混薄膜中观察到的吸收损耗可以理解为由单独的共混成分造成的,这与纯薄膜中的吸收损耗相似。在 PBDB-T、PF5-Y5 及其共混薄膜的傅立叶变换红外光谱中出现的新峰值见证了新羰基的形成,而在 Y5 和PYT 薄膜的光谱中则没有这些峰值。PF5-Y5 和 PBDB-T 薄膜的 XPS C 1s 光谱证实了羰基的形成,而 S 2p 光谱则显示这些薄膜在暴露 30 小时后形成了砜基。这些结果证实,与共聚物 PF5-Y5 相比,Y5 和共聚物PYT 薄膜的抗光氧化能力明显更强。这些结果的比较表明,以烷基化噻吩为侧链的苯并[1,2-b:4,5-b′]二噻吩分子(BDT-T)加速了 PBDB-T 和 PF5-Y5 的光降解。用噻吩取代 BDT-T 单元有助于增强PYT 的稳定性,这表明共聚单体的性质对 Y5 基共聚物的内在光稳定性有重大影响。这些新见解有望促进稳定的供体和受体聚合物的设计,从而开发出长寿命的 OPV 器件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Effect of molecular structure on the photochemical stability of acceptor and donor polymers used in organic solar cells†

Effect of molecular structure on the photochemical stability of acceptor and donor polymers used in organic solar cells†

The limited operational lifetime of organic solar cells remains an obstacle to their commercial development and is largely due to the poor intrinsic photostability of the conjugated molecules that constitute the photoactive layer. Here, we selected a series of state-of-the-art donor and acceptor materials including PBDB-T, Y5, PF5-Y5, and PYT to study their photostability under AM1.5 simulated sunlight in ambient conditions. Their properties are monitored over time, using various spectroscopy techniques, including UV-Vis absorption, Fourier-transform infrared (FTIR), and X-ray and ultraviolet photoelectron spectroscopy (XPS and UPS). We found that the absorption spectra of Y5 and PYT films remain almost intact even after 30 hours of light exposure in air, while the PF5-Y5 and PBDB-T films undergo rapid photobleaching. The absorption losses observed in blend films of PBDB-T with Y5 and with PF5-Y5 can be understood as composed of contributions from the separate blend components that are similar to the absorption losses in neat films. The new peaks emerging in the FTIR spectra of PBDB-T, PF5-Y5, and their blend films witness the formation of new carbonyl groups, while these are absent in the spectra of the Y5 and PYT films. The XPS C 1s spectra of the PF5-Y5 and PBDB-T films confirm this carbonyl formation and the S 2p spectra reveal that sulphone groups are formed after 30 hours of exposure of these films. These results confirm that films of Y5 and the copolymer PYT are significantly more resistant to photooxidation, compared to the copolymer PF5-Y5. The comparison of these results suggests that the benzo[1,2-b:4,5-b′]dithiophene moiety with alkylated thiophenes as side chains (BDT-T) accelerates the photodegradation of PBDB-T and PF5-Y5. The replacement of the BDT-T unit by thiophene contributes to the enhanced stability of PYT, demonstrating that the nature of the co-monomer has a significant effect on the intrinsic photostability of Y5-based copolymers. These new insights are expected to stimulate the design of stable donors and acceptor polymers for the development of long-lived OPV devices.

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来源期刊
Materials Advances
Materials Advances MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
7.60
自引率
2.00%
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665
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5 weeks
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