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通过界面染料修饰提高聚合物/富勒烯本体异质结太阳能电池的光捕获效率。

Improvement of the light-harvesting efficiency in polymer/fullerene bulk heterojunction solar cells by interfacial dye modification.

机构信息

Department of Polymer Chemistry, Graduate School of Engineering, Kyoto University, Katsura, Nishikyo, Kyoto 615-8510, Japan.

出版信息

ACS Appl Mater Interfaces. 2009 Apr;1(4):804-10. doi: 10.1021/am800229p.

DOI:10.1021/am800229p
PMID:20356005
Abstract

Enhancement of the light-harvesting efficiency in poly(3-hexylthiophene)/fullerene derivative (P3HT/PCBM) bulk heterojunction solar cells has been demonstrated by the introduction of near-infrared phthalocyanine molecules as the third component at the P3HT/PCBM interface. The introduction of silicon phthalocyanine derivative (SiPc) increased the short-circuit current density and hence improved the overall power conversion efficiency by 20%, compared to the P3HT/PCBM control device. For P3HT/PCBM/SiPc devices, two distinct external quantum efficiency (EQE) peaks were observed at wavelengths for the absorption bands of SiPc as well as P3HT before and after thermal annealing, suggesting that SiPc molecules are located at the P3HT/PCBM interface because of crystallization of the P3HT and PCBM domains. Furthermore, the EQE for the device increased even at wavelengths for the absorption band of P3HT by the introduction of SiPc molecules. This indicates that P3HT excitons can be dissociated into charge carriers more efficiently in the presence of SiPc molecules at the P3HT/PCBM interface by energy transfer from P3HT to SiPc molecules. These findings suggest that there are two origins for the increase in the photocurrent by the introduction of SiPc; SiPc molecules serve not only as a light-harvesting photosensitizer but also as an energy funnel for P3HT excitons at the P3HT/PCBM interface.

摘要

通过在聚(3-己基噻吩)/富勒烯衍生物(P3HT/PCBM)体异质结太阳能电池的 P3HT/PCBM 界面处引入近红外酞菁分子作为第三组分,已经证明了提高了光捕获效率。与 P3HT/PCBM 对照器件相比,硅酞菁衍生物(SiPc)的引入增加了短路电流密度,从而提高了整体功率转换效率 20%。对于 P3HT/PCBM/SiPc 器件,在热退火前后 P3HT 的吸收带以及 SiPc 的吸收带的波长处观察到两个明显的外量子效率(EQE)峰,这表明 SiPc 分子位于 P3HT/PCBM 界面处,因为 P3HT 和 PCBM 畴的结晶。此外,通过引入 SiPc 分子,即使在 P3HT 吸收带的波长处,器件的 EQE 也会增加。这表明,在 P3HT/PCBM 界面处存在 SiPc 分子时,P3HT 激子可以通过从 P3HT 到 SiPc 分子的能量转移更有效地离解为载流子。这些发现表明,引入 SiPc 会增加光电流有两个原因;SiPc 分子不仅作为光捕获光敏剂,而且作为 P3HT 激子在 P3HT/PCBM 界面处的能量漏斗。

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