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混合氧化锌共轭聚合物本体异质结太阳能电池。

Hybrid zinc oxide conjugated polymer bulk heterojunction solar cells.

作者信息

Beek Waldo J E, Wienk Martijn M, Kemerink Martijn, Yang Xiaoniu, Janssen René A J

机构信息

Molecular Materials and Nanosystems, Department of Chemical Engineering & Chemistry, Eindhoven University of Technology, P.O. Box 513, 5600 MB Eindhoven, The Netherlands.

出版信息

J Phys Chem B. 2005 May 19;109(19):9505-16. doi: 10.1021/jp050745x.

Abstract

Bulk heterojunction photovoltaic devices based on blends of a conjugated polymer poly[2-methoxy-5-(3',7'-dimethyloctyloxy)-1,4-phenylenevinylene] (MDMO-PPV) as electron donor and crystalline ZnO nanoparticles (nc-ZnO) as electron acceptor have been studied. Composite nc-ZnO:MDMO-PPV films were cast from a common solvent mixture. Time-resolved pump-probe spectroscopy revealed that a photoinduced electron transfer from MDMO-PPV to nc-ZnO occurs in these blends on a sub-picosecond time scale and produces a long-lived (milliseconds) charge-separated state. The photovoltaic effect in devices, made by sandwiching the active nc-ZnO:MDMO-PPV layer between charge-selective electrodes, has been studied as a function of the ZnO concentration and the thickness of the layer. We also investigated changing the degree and type of mixing of the two components through the use of a surfactant for ZnO and by altering the size and shape of the nc-ZnO particles. Optimized devices have an estimated AM1.5 performance of 1.6% with incident photon to current conversion efficiencies up to 50%. Photoluminescence spectroscopy, atomic force microscopy, and transmission electron microscopy have been used to gain insight in the morphology of these blends.

摘要

对基于共轭聚合物聚2-甲氧基-5-(3',7'-二甲基辛氧基)-1,4-亚苯基亚乙烯基作为电子供体和结晶氧化锌纳米颗粒(nc-ZnO)作为电子受体的共混物的本体异质结光伏器件进行了研究。复合nc-ZnO:MDMO-PPV薄膜由一种常见的溶剂混合物浇铸而成。时间分辨泵浦-探测光谱表明,在这些共混物中,从MDMO-PPV到nc-ZnO的光致电子转移在亚皮秒时间尺度上发生,并产生长寿命(毫秒级)的电荷分离态。通过将活性nc-ZnO:MDMO-PPV层夹在电荷选择性电极之间制成的器件中的光伏效应,已作为ZnO浓度和该层厚度的函数进行了研究。我们还研究了通过使用ZnO的表面活性剂以及改变nc-ZnO颗粒的尺寸和形状来改变两种组分的混合程度和类型。优化后的器件在AM1.5条件下的估计性能为1.6%,入射光子到电流的转换效率高达50%。光致发光光谱、原子力显微镜和透射电子显微镜已被用于深入了解这些共混物的形态。

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