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Spectroscopic and Intensity Modulated Photocurrent Imaging of Polymer/Fullerene Solar Cells

机译:聚合物/富勒烯太阳能电池的光谱和强度调制光电流成像

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摘要

Molecular spectroscopic and intensity modulated photocurrent spectroscopy (IMPS) imaging techniques are used to map morphology-dependent charge recombination in organic polymer/fullerene solar cells. IMPS uses a small (similar to 10%) sinusoidal modulation of an excitation light source and photocurrent responses are measured while modulation frequencies are swept over several decades (similar to 1 Hz-20 kHz). Solar cells consisting of either poly(3-hexylthiophene) (P3HT) and poly(2-methoxy-5-(3'-7'-dimethyloctyloxy)-1,4-phenylenevinylene) (MDMO-PPV) blended with a soluble fullerene derivative, [6,6]-phenyl-C61-butyric acid methyl ester (PCBM) are used as targets. The morphologies of these polymer/fullerene systems are distinctly different due to PCBM miscibility in various polymer conformers. IMPS responses of both blend solar cells show unique morphology-dependent charge generation, transport and extraction signatures that can be spatially correlated to microscopic variations in local composition and packing by constructing IMPS images along with corresponding molecular spectroscopic imaging over the same scan area. We find that boundaries separating enriched polymer and fullerene domains promote nongeminate charge recombination appearing as positive phase shifts in the IMPS response. These zones are susceptible to degradation and we propose the approaches herein can be used to probe material and device degradation in situ under various conditions, such as oxygen content, temperature and ionizing radiation.
机译:分子光谱和强度调制光电流光谱(IMPS)成像技术用于在有机聚合物/富勒烯太阳能电池中绘制形态依赖的电荷复合图。 IMPS对激发光源使用小的(近似10%)正弦调制,在调制频率扫过数十年(近似于1 Hz-20 kHz)的同时测量光电流响应。由聚(3-己基噻吩)(P3HT)和聚(2-甲氧基-5-(3'-7'-二甲基辛氧基)-1,4-亚苯基亚乙烯基)(MDMO-PPV)混合有可溶性富勒烯衍生物组成的太阳能电池,[6,6]-苯基-C61-丁酸甲酯(PCBM)被用作目标。这些聚合物/富勒烯体系的形态因各种聚合物构象异构体中的PCBM混溶性而明显不同。两种混合太阳能电池的IMPS响应均显示出独特的形态学相关电荷生成,传输和提取特征,通过在同一扫描区域上构建IMPS图像以及相应的分子光谱成像,可以将其与局部成分和堆积的微观变化在空间上相关。我们发现边界分离富集的聚合物和富勒烯域促进非gege电荷重组出现在IMPS响应中的正相移。这些区域易于降解,我们建议本文中的方法可用于在各种条件(例如氧含量,温度和电离辐射)下原位探测材料和器件的降解。

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