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首页> 外文期刊>Journal of Materials Science >Composition and annealing effects in polythiophene/fullerene solar cells
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Composition and annealing effects in polythiophene/fullerene solar cells

机译:聚噻吩/富勒烯太阳能电池的组成和退火效应

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摘要

We have fabricated organic solar cells with blends of regioregular poly(3-hexylthiophene) (P3HT) and 1-(3-methoxycarbonyl)-propyl-1-phenyl-(6,6)C61 (PCBM) as electron donor and electron acceptor, respectively. Blend composition and device annealing effects were investigated with optical absorption and photoluminescence spectroscopy, atomic force microscopy, photocurrent spectroscopy, and current-voltage characteristic measurements on devices under monochromatic or air mass (AM) 1.5 simulated solar light illumination. The highest efficiency was achieved for the 1:1 (P3HT:PCBM) weight ratio composition. The good performance is attributed to an optimized morphology that enables close intermolecular packing of P3HT chains. Inferior performance for the 1:2 composition is attributed to poorer intermolecular packing with increased PCBM content, while phase segregation on a sub-micron scale was observed for the 1:4 composition. The power conversion efficiency (AM 1.5) was doubled by the thermal annealing of devices at 140∘C to reach a value of 1.4%.
机译:我们制备了有机太阳能电池,其具有区域规则的聚(3-己基噻吩)(P3HT)和1-(3-甲氧羰基)-丙基-1-苯基-(6,6)C61 (PCBM)的混合物作为电子供体和电子受体。在单色或空气质量(AM)1.5模拟太阳光照射下,通过光吸收和光致发光光谱,原子力显微镜,光电流光谱以及器件上的电流-电压特性测量,研究了共混物的成分和器件的退火效果。 1:1(P3HT:PCBM)重量比组合物实现了最高效率。良好的性能归因于优化的形态,可实现P3HT链的紧密分子间堆积。 1:2组合物的性能较差是由于分子间堆积较差,PCBM含量增加,而1:4组合物则观察到亚微米级的相偏析。通过在140°C下对器件进行热退火,功率转换效率(AM 1.5)翻了一番,达到1.4%。

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  • 来源
    《Journal of Materials Science 》 |2005年第6期| 1371-1376| 共6页
  • 作者单位

    Center for Electronic Materials and Devices Department of Physics Blackett Laboratory Imperial College London;

    Center for Electronic Materials and Devices Department of Physics Blackett Laboratory Imperial College London;

    Center for Electronic Materials and Devices Department of Physics Blackett Laboratory Imperial College London;

    Center for Electronic Materials and Devices Department of Physics Blackett Laboratory Imperial College London;

    Center for Electronic Materials and Devices Department of Chemistry Imperial College London;

    Center for Electronic Materials and Devices Department of Chemistry Imperial College London;

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