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11.4 Efficiency non-fullerene polymer solar cells with trialkylsilyl substituted 2D-conjugated polymer as donor

机译:以三烷基甲硅烷基取代的2D共轭聚合物为施主的11.4%效率非富勒烯聚合物太阳能电池

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摘要

Simutaneously high open circuit voltage and high short circuit current density is a big challenge for achieving high efficiency polymer solar cells due to the excitonic nature of organic semdonductors. Herein, we developed a trialkylsilyl substituted 2D-conjugated polymer with the highest occupied molecular orbital level down-shifted by Si–C bond interaction. The polymer solar cells obtained by pairing this polymer with a non-fullerene acceptor demonstrated a high power conversion efficiency of 11.41% with both high open circuit voltage of 0.94 V and high short circuit current density of 17.32 mA cm−2 benefitted from the complementary absorption of the donor and acceptor, and the high hole transfer efficiency from acceptor to donor although the highest occupied molecular orbital level difference between the donor and acceptor is only 0.11 eV. The results indicate that the alkylsilyl substitution is an effective way in designing high performance conjugated polymer photovoltaic materials.
机译:由于有机半导体的激子性质,同时高的开路电压和高的短路电流密度是实现高效率聚合物太阳能电池的一大挑战。在这里,我们开发了一种三烷基甲硅烷基取代的2D共轭聚合物,其最高占据分子轨道水平因Si-C键相互作用而下移。通过将这种聚合物与非富勒烯受体配对而获得的聚合物太阳能电池表现出11.41%的高功率转换效率,受益于互补吸收,高开路电压为0.94 V,高短路电流密度为17.32 mA cm-2尽管供体和受体之间的最高占据分子轨道能级差仅为0.11 eV,但从供体到受体的空穴转移效率很高,而且从受体到供体的空穴传输效率很高。结果表明,烷基甲硅烷基取代是设计高性能共轭聚合物光伏材料的有效途径。

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