采用聚合物嵌入式伪平面异质结的高效柔性有机太阳能电池。

0 MATERIALS SCIENCE, MULTIDISCIPLINARY Discover nano Pub Date : 2024-03-04 DOI:10.1186/s11671-024-03982-1
Lin Zhang, Yuxin He, Wen Deng, Xueliang Guo, Zhaozhao Bi, Jie Zeng, Hui Huang, Guangye Zhang, Chen Xie, Yong Zhang, Xiaotian Hu, Wei Ma, Yongbo Yuan, Xiaoming Yuan
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引用次数: 0

摘要

有机太阳能电池(OSC)被认为是柔性和可穿戴电子设备的重要能源。伪平面异质结(PPHJ)有机太阳能电池简化了溶液制备和形态控制。然而,非卤化溶剂印制的 PPHJ 通常具有不理想的垂直成分分布和供体/受体界面不足的问题。此外,非富勒烯小分子受体(NFSMAs)在 PPHJ 中的固有脆性导致其柔韧性较差,而且在印刷受体层时,NFSMAs 溶液显示出粘度不足。在此,我们提出了一种新方法--聚合物融入伪平面异质结(PiPPHJ),即在 NFSMAs 层中引入少量聚合物供体。我们的研究结果表明,聚合物的加入会增加受体溶液的粘度,从而改善刀片涂层的加工性能和整体薄膜质量。同时,这种策略还能有效调节垂直成分分布,从而形成更多的供体/受体界面,并将功率转换效率提高到 17.26%。此外,基于 PiPPHJ 的薄膜还具有优异的拉伸性能,其裂纹起始应变为 12.0%,超过了基于 PPHJ 的薄膜(9.6%)。因此,大面积(1 平方厘米)柔性器件的效率达到了 13.30%,并在 1000 次弯曲循环后保持了极佳的机械柔韧性,效率达到了初始效率的 82%。这些发现凸显了基于 PiPPHJ 的 OSCs 在柔性和可穿戴电子设备中的巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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High-efficiency flexible organic solar cells with a polymer-incorporated pseudo-planar heterojunction.

Organic solar cells (OSCs) are considered as a crucial energy source for flexible and wearable electronics. Pseudo-planar heterojunction (PPHJ) OSCs simplify the solution preparation and morphology control. However, non-halogenated solvent-printed PPHJ often have an undesirable vertical component distribution and insufficient donor/acceptor interfaces. Additionally, the inherent brittleness of non-fullerene small molecule acceptors (NFSMAs) in PPHJ leads to poor flexibility, and the NFSMAs solution shows inadequate viscosity during the printing of acceptor layer. Herein, we propose a novel approach termed polymer-incorporated pseudo-planar heterojunction (PiPPHJ), wherein a small amount of polymer donor is introduced into the NFSMAs layer. Our findings demonstrate that the incorporation of polymer increases the viscosity of acceptor solution, thereby improving the blade-coating processability and overall film quality. Simultaneously, this strategy effectively modulates the vertical component distribution, resulting in more donor/acceptor interfaces and an improved power conversion efficiency of 17.26%. Furthermore, PiPPHJ-based films exhibit superior tensile properties, with a crack onset strain of 12.0%, surpassing PPHJ-based films (9.6%). Consequently, large-area (1 cm2) flexible devices achieve a considerable efficiency of 13.30% and maintain excellent mechanical flexibility with 82% of the initial efficiency after 1000 bending cycles. These findings underscore the significant potential of PiPPHJ-based OSCs in flexible and wearable electronics.

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