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用于倒置聚合物太阳能电池的溶液处理的MoO3:PEDOT:PSS混合空穴传输层

Solution-processed MoO3:PEDOT:PSS hybrid hole transporting layer for inverted polymer solar cells.

作者信息

Wang Yiling, Luo Qun, Wu Na, Wang Qiankun, Zhu Hongfei, Chen Liwei, Li Yan-Qing, Luo Liqiang, Ma Chang-Qi

机构信息

†Printable Electronics Research Center, Suzhou Institute of Nano-Tech and Nano-Bionic, Chinese Academy of Sciences, Suzhou, 215123, P. R. China.

§Department of Chemistry, Shanghai University, Shanghai, 200444, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2015 Apr 8;7(13):7170-9. doi: 10.1021/am509049t. Epub 2015 Mar 30.

Abstract

Solution-processed organic-inorganic hybrids composing of MoO3 nanoparticles and PEDOT:PSS were developed for use in inverted organic solar cells as hole transporting layer (HTL). The hybrid MoO3:PEDOT:PSS inks were prepared by simply mixing PEDOT:PSS aqueous and MoO3 ethanol suspension together. A core-shell structure was proposed in the MoO3:PEDOT:PSS hybrid ink, where PEDOT chains act as the core and MoO3 nanoparticles connected with PSS chains act as the composite shell. The mixing with PEDOT:PSS suppressed the aggregation of MoO3 nanoparticles, which led to a smoother surface. In addition, since the hydrophilic PSS chains were passivated through preferentially connection with MoO3, the stronger adhesion between MoO3 nanoparticles and the photoactive layer improved the film forming ability of the MoO3:PEDOT:PSS hybrid ink. The MoO3:PEDOT:PSS hybrid HTL can therefore be feasibly deposited onto the hydrophobic photoactive polymer layer without any surface treatment. The use of the MoO3:PEDOT:PSS hybrid HTL resulted in the optimized P3HT:PC61BM- and PTB7:PC61BM-based inverted organic solar cells reaching highest power conversion efficiencies of 3.29% and 5.92%, respectively, which were comparable with that of the control devices using thermally evaporated MoO3 HTL (3.05% and 6.01%, respectively). Furthermore, less HTL thickness dependence of device performance was found for the hybrid HTL-based devices, which makes it more compatible with roll-to-roll printing process. In the end, influence of the blend ratio of MoO3 to PEDOT:PSS on photovoltaic performance and device stability was studied carefully, results indicated that the device performance would decrease with the increase of MoO3 blended ratio, whereas the long-term stability was improved.

摘要

由三氧化钼纳米颗粒和聚(3,4-乙撑二氧噻吩):聚苯乙烯磺酸盐(PEDOT:PSS)组成的溶液处理有机-无机杂化物被开发用于倒置有机太阳能电池作为空穴传输层(HTL)。通过简单地将PEDOT:PSS水溶液和三氧化钼乙醇悬浮液混合在一起制备杂化三氧化钼:PEDOT:PSS油墨。在三氧化钼:PEDOT:PSS杂化油墨中提出了一种核壳结构,其中PEDOT链作为核,与PSS链相连的三氧化钼纳米颗粒作为复合壳。与PEDOT:PSS的混合抑制了三氧化钼纳米颗粒的聚集,这导致了更光滑的表面。此外,由于亲水性PSS链通过与三氧化钼的优先连接而被钝化,三氧化钼纳米颗粒与光活性层之间更强的粘附力提高了三氧化钼:PEDOT:PSS杂化油墨的成膜能力。因此,三氧化钼:PEDOT:PSS杂化HTL可以在不进行任何表面处理的情况下可行地沉积在疏水性光活性聚合物层上。使用三氧化钼:PEDOT:PSS杂化HTL导致基于聚(3-己基噻吩):[6,6]-苯基-C61-丁酸甲酯(P3HT:PC61BM)和基于聚噻吩并噻唑并噻吩(PTB7):PC61BM的倒置有机太阳能电池分别达到最高功率转换效率3.29%和5.92%,这与使用热蒸发三氧化钼HTL的对照器件(分别为3.05%和6.01%)相当。此外,对于基于杂化HTL的器件,发现器件性能对HTL厚度的依赖性较小,这使得它与卷对卷印刷工艺更兼容。最后,仔细研究了三氧化钼与PEDOT:PSS的混合比例对光伏性能和器件稳定性的影响,结果表明器件性能会随着三氧化钼混合比例的增加而降低,而长期稳定性得到改善。

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