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Achieving over 11 power conversion efficiency in PffBT4T-2OD-based ternary polymer solar cells with enhanced open-circuit-voltage and suppressed charge recombination

机译:基于PFFBT4T-2OD的三元高分子太阳能电池在增强的开路电压和抑制电荷重组中实现了超过11%的功率转换效率

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摘要

© 2017 Elsevier Ltd Fabricating ternary solar cells (TSCs) is a promising strategy to improve the power conversion efficiency of organic photovoltaics without introducing sophisticated processing procedures. We report in this work high efficiency TSCs with the maximum PCE over 11% by introducing a medium band gap conjugated polymer PCDTBT8 into the PffBT4T-2OD:PC 71 BM binary photovoltaic system. Morphological investigation shows that the third component PCDTBT8 locates at the interface between PffBT4T-2OD and PC 71 BM without disrupting the crystallization of PffBT4T-2OD to maintain decent charge mobility, and loosens the fullerene aggregation networks to facilitate exciton dissociation. The efficient Förster energy transfer from PCDTBT8 to PffBT4T-2OD enables the ternary devices to retain a high short-circuit current density despite the slightly decreased light absorption. Device physics studies suggest that the addition of PCDTBT8 can enhance the built-in voltage, prolong the carrier lifetime, reduce the defect density and suppress the trap-assisted charge recombination, leading to an improved FF and V OC to enhance the efficiency of ternary devices.
机译:©2017 elestvier Ltd制造三元太阳能电池(TSC)是提高有机光伏电力转换效率的有希望的策略,而无需引入复杂的加工程序。我们通过将中型带隙缀合的聚合物PCDTBT8引入PFFBT4T-2D:PC 71 BM二进制光伏系统,在这项工作中报告了高效率的TSC,超过11%以上超过11%。形态学研究表明,第三组分PCDTBT8位于PFFBT4T-2D和PC 71 BM之间的界面处,而不会破坏PFFBT4T-2D的结晶以保持体面的电荷迁移率,并松开富勒烯聚集网络以促进激子解离。尽管光吸收略微降低,但从PCDTBT8到PFFBT4T-2OD的高效Förster能量转移使得三元设备能够保持高短路电流密度。设备物理研究表明,PCDTBT8的添加可以增强内置电压,延长载体寿命,降低缺陷密度并抑制陷阱辅助电荷重组,导致改进的FF和V oc以提高三元设备的效率。提高三元设备的效率。

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