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High‐Efficiency Fullerene Solar Cells Enabled by a Spontaneously Formed Mesostructured CuSCN‐Nanowire Heterointerface

机译:自发形成介观的CuSCN-纳米线异质界面的高效富勒烯太阳能电池

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摘要

Fullerenes and their derivatives are widely used as electron acceptors in bulk‐heterojunction organic solar cells as they combine high electron mobility with good solubility and miscibility with relevant semiconducting polymers. However, studies on the use of fullerenes as the sole photogeneration and charge‐carrier material are scarce. Here, a new type of solution‐processed small‐molecule solar cell based on the two most commonly used methanofullerenes, namely [6,6]‐phenyl‐C61‐butyric acid methyl ester (PC60BM) and [6,6]‐phenyl‐C71‐butyric acid methyl ester (PC70BM), as the light absorbing materials, is reported. First, it is shown that both fullerene derivatives exhibit excellent ambipolar charge transport with balanced hole and electron mobilities. When the two derivatives are spin‐coated over the wide bandgap p‐type semiconductor copper (I) thiocyanate (CuSCN), cells with power conversion efficiency (PCE) of ≈1%, are obtained. Blending the CuSCN with PC70BM is shown to increase the performance further yielding cells with an open‐circuit voltage of ≈0.93 V and a PCE of 5.4%. Microstructural analysis reveals that the key to this success is the spontaneous formation of a unique mesostructured p–n‐like heterointerface between CuSCN and PC70BM. The findings pave the way to an exciting new class of single photoactive material based solar cells.
机译:富勒烯及其衍生物被广泛用作体异质结有机太阳能电池中的电子受体,因为它们结合了高电子迁移率,良好的溶解性和与相关半导体的可混溶性。但是,关于使用富勒烯作为唯一的光生和电荷载体材料的研究很少。这里,一种基于两种最常用的甲基富勒烯的溶液处理的小分子太阳能电池,即[6,6]-苯基-C61-丁酸甲酯(PC60BM)和[6,6]-苯基-据报道,C71丁酸甲酯(PC70BM)作为吸光材料。首先,表明两种富勒烯衍生物均具有出色的双极性电荷传输,且空穴和电子迁移率平衡。当将两种衍生物旋涂在宽带隙p型硫氰酸铜(I)半导体铜(I)上时,可获得功率转换效率(PCE)约为1%的电池。结果表明,将CuSCN与PC70BM混合可以进一步提高性能,从而产生开路电压≈0.93V,PCE为5.4%的电池。微观结构分析表明,成功的关键是CuSCN和PC70BM之间自发形成独特的介孔结构p–n样异质界面。这些发现为基于单光敏材料的新型太阳能电池铺平了道路。

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