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用于倒置有机太阳能电池中各种低带隙聚合物的 ZnO 纳米棒阵列。

ZnO nanorod arrays for various low-bandgap polymers in inverted organic solar cells.

机构信息

Graduate Institute of Photonics and Optoelectronics, National Taiwan University, No. 1, Sec. 4, Roosevelt Road, Taipei 10617, Taiwan, ROC.

出版信息

Nanoscale. 2014 Jan 7;6(1):466-71. doi: 10.1039/c3nr04418a. Epub 2013 Nov 11.

Abstract

Due to the limited diffusion length of carriers in polymer solar cells (PSCs), the path of carriers is a crucial factor that determines the device performance. Zinc oxide nanorods (NRs) as the electron transport channel can reduce electron-hole recombination and transport the electron to the electrode efficiently for poly(3-hexylthiophene) (P3HT), but have been seldom demonstrated for low-bandgap polymers. Here we successfully applied ZnO NRs, which were grown via the hydrothermal method, as a platform to enhance PSC efficiency for various low-bandgap polymers. In order to assure that the nanorod morphology functioned properly for PSCs, the growth time, the concentration, and the resulting morphology were systematically investigated in depths. Such ZnO NRs were applied to different organic systems, resulting in the increase of the PCE for PBDTTT-C/PC71BM from 4.76% to 6.07% and PBDTTT-C-T/PC71BM from 5.40% to 7.34%. Through those experiments, we established a potentially universal and efficient ZnO NRs platform for various low-bandgap polymers to achieve high efficiency of inverted PSCs.

摘要

由于在聚合物太阳能电池(PSCs)中载体的扩散长度有限,因此载体的路径是决定器件性能的关键因素。氧化锌纳米棒(NRs)作为电子传输通道,可以有效减少电子-空穴复合,并将电子高效地传输到电极,适用于聚(3-己基噻吩)(P3HT),但很少用于低带隙聚合物。在这里,我们成功地将通过水热法生长的 ZnO NRs 应用于各种低带隙聚合物的太阳能电池中,以提高其效率。为了确保纳米棒形态能够正常应用于 PSCs,我们深入系统地研究了生长时间、浓度和所得形态等因素。将这些 ZnO NRs 应用于不同的有机体系中,使 PBDTTT-C/PC71BM 的 PCE 从 4.76%提高到 6.07%,PBDTTT-C-T/PC71BM 的 PCE 从 5.40%提高到 7.34%。通过这些实验,我们为各种低带隙聚合物建立了一个潜在通用且高效的 ZnO NRs 平台,以实现高效倒置太阳能电池。

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