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首页> 外文期刊>Chemical science >A structure–property study of fluoranthene-cored hole-transporting materials enables 19.3% efficiency in dopant-free perovskite solar cells
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A structure–property study of fluoranthene-cored hole-transporting materials enables 19.3% efficiency in dopant-free perovskite solar cells

机译:对以荧蒽为核心的空穴传输材料进行的结构性质研究使无掺杂钙钛矿型太阳能电池的效率提高了19.3%

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To date, most of the prevailing organic hole-transporting materials (HTMs) used in perovskite solar cells (PVSCs), such as spiro-OMeTAD and PTAA, generally require a sophisticated doping process to ensure their reasonable hole-transporting properties. Unfortunately, the employed dopants/additives and the associated oxidation reactions have been shown to deteriorate the long-term device stability seriously. The exploitation of efficient and stable dopant-free HTMs is thus strongly desired for PVSCs. However, effective molecular design strategies for dopant-free HTMs are still lacking. Thus far, only a few of them yielded comparable performance to their doped counterparts, while their synthetic costs are still high. In this work, a new class of cost-effective small molecule dopant-free HTMs have been developed using readily available fluoranthene as the structural framework. The structure–property correlation of the fluoranthene-based HTMs was carefully investigated by tuning their structural geometry (linear vs. branched), connection between electron-donating and electron-withdrawing moieties (single bond vs. ethylene), and the substitution position of the methoxy side-groups ( para - vs. meta -). As a result, the optimized molecule, FBA3 , was demonstrated to serve as an efficient dopant-free HTM in a conventional PVSC to deliver an impressive power conversion efficiency of 19.27%, representing one of the best cost-effective dopant-free organic HTMs reported thus far.
机译:迄今为止,钙钛矿太阳能电池(PVSC)中使用的大多数主流有机空穴传输材料(HTM),例如spiro-OMeTAD和PTAA,通常都需要复杂的掺杂工艺来确保其合理的空穴传输性能。不幸的是,已证明所使用的掺杂剂/添加剂和相关的氧化反应严重恶化了长期的器件稳定性。因此,PVSC非常需要开发有效且稳定的无掺杂HTM。但是,仍然缺乏有效的无掺杂HTM分子设计策略。迄今为止,它们中只有少数几个具有与掺杂的同类产品相当的性能,而它们的合成成本仍然很高。在这项工作中,使用容易获得的荧蒽作为结构框架,开发了一种新型的具有成本效益的无小分子无掺杂剂的HTM。通过调整它们的结构几何形状(线性与分支),给电子与吸电子部分之间的连接(单键与乙烯)以及取代基的位置,仔细研究了基于荧蒽的HTM的结构与性质的相关性。甲氧基侧基(对-对-间)。结果表明,优化分子FBA3在常规PVSC中可作为有效的无掺杂HTM发挥作用,可提供令人印象深刻的19.27%的功率转换效率,是报道的最佳成本效益的无掺杂有机HTM之一。迄今。

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