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首页> 外文期刊>Nanotechnology >Fine tuning of the PCDTBT-OR:PC_(71)BM blend nanoscale phase separation via selective solvent annealing toward high-performance polymer photovoltaics
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Fine tuning of the PCDTBT-OR:PC_(71)BM blend nanoscale phase separation via selective solvent annealing toward high-performance polymer photovoltaics

机译:通过选择性溶剂退火向高性能聚合物光伏电池微调PCDTBT-OR:PC_(71)BM共混物纳米级相分离

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Solution-processable polymer solar cells show great promise for providing a cost-effective route to create lightweight and flexible solar energy conversion devices. The photoactive layer comprising the conjugated polymer donor and fullerene derivative acceptor must be optimized to form bicontinuous nanoscale phase separation in order for efficient exciton dissociation and charge collection due to the short exciton diffusion length of organic semiconductors. The donor polymer poly[9-(heptadecan-9-yl)-9H-carbazole- 2,7-diyl-alt-(5,6- bis(hexyloxy)-4,7-di(thiophen-2- yl)benzo[c][1,2,5]thiadiazole)-5,5-diyl] (PCDTBT-OR) has a deeper highest occupied molecular orbital level compared to its counterpart PCDTBT, and shows promise in increasing the open-circuit voltage and power conversion efficiency (PCE) of polymer solar cells. The phase separation evolution of the PCDTBT-OR:PC_(71)BM blend with various weight ratios under tetrahydrofuran (THF) vapor annealing and its influence on the photovoltaic performance is investigated in detail. It is found that THF vapor annealing can promote the acceptor PC_(71)BM aggregation from the donor PCDTBT-OR matrix to form nanoscale donor/acceptor phase separation for efficient exciton dissociation and charge collection depending on the donor/acceptor weight ratio and the annealing time. The THF vapor-annealed PCDTBT-OR:PC_(71)BM solar cells exhibit remarkable enhancement, with a PCE of 7.01% compared to 3.25% of the as-cast solar cells with the same active layer thickness. This work provides a general methodology to construct nano-interpenetrating networks for homogeneous polymer/fullerene blends and is potentially applicable to the roll-to-roll manufacturing of polymer solar cells.
机译:可溶液加工的聚合物太阳能电池具有巨大的前景,有望提供一种经济有效的途径来制造轻巧而灵活的太阳能转换设备。包含共轭聚合物供体和富勒烯衍生物受体的光敏层必须进行优化,以形成双连续纳米级相分离,以便由于有机半导体的激子扩散长度短而有效地进行激子离解和电荷收集。供体聚合物聚[9-(十七烷-9-基)-9H-咔唑-2,7-二基-alt-(5,6-双(己氧基)-4,7-二(噻吩-2-基)苯并[c] [1,2,5]噻二唑)-5,5-二基](PCDTBT-OR)与对应的PCDTBT相比具有更深的最高占据分子轨道能级,并显示出增加开路电压和功率的希望聚合物太阳能电池的转换效率(PCE)。详细研究了不同重量比的PCDTBT-OR:PC_(71)BM共混物在四氢呋喃(THF)气相退火下的相分离演化及其对光伏性能的影响。发现THF蒸气退火可以促进供体PCDTBT-OR基质中的受体PC_(71)BM聚集,形成纳米级供体/受体相分离,从而有效地进行激子离解和电荷收集,具体取决于供体/受体重量比和退火时间。 THF蒸气退火的PCDTBT-OR:PC_(71)BM太阳能电池表现出显着的增强,与具有相同活性层厚度的铸态太阳能电池的3.25%相比,PCE为7.01%。这项工作为构建均质聚合物/富勒烯共混物的纳米互穿网络提供了一种通用方法,并且可能适用于聚合物太阳能电池的卷对卷制造。

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