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Impact of Fullerene Mixing Behavior on the Microstructure, Photophysics, and Device Performance of Polymer/Fullerene Solar Cells

机译:富勒烯混合行为对聚合物/富勒烯太阳能电池微结构,光物理和器件性能的影响

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Here, a comprehensive study of the influence of polymer:fullerene mixing behavior on the performance, thin-film microstructure, photophysics, and device physics of polymer solar cells is presented. In particular, blends of the donor polymer PBDTTT-EFT with the acceptor PC71BM that exhibit power conversion efficiencies over 9% are investigated. Through tuning of the fullerene concentration in PBDTTT-EFT:PC71BM blends, the impact of fullerene mixing behavior is systematically investigated via a combination of synchrotron-based X-ray scattering and spectroscopy techniques. The impact of fullerene loading on photophysics and device physics is further explored with steady-state photoluminescence measurements, ultrafast transient absorption spectroscopy, and transient photovoltage measurements. In the low fullerene concentration regime (<50 wt %), most fullerene molecules are dispersed in the polymer matrix, resulting in severe geminate and nongeminate recombination due to a lack of pure fullerene aggregates and percolating pathways for charge separation and transport. In the high fullerene concentration regime (>70 wt %), large fullerene domains result in incomplete PC71BM exciton harvesting with the presence of fullerene molecules also disrupting the molecular packing of polymer crystallites. The optimum fullerene concentration of similar to 60-67 wt % balances the requirements of charge generation and charge collection. These findings demonstrate that controlling the fullerene concentration in the mixed phase and optimizing the balance between pure and mixed phases are critical for maximizing the efficiency of highly mixed polymer/fullerene solar cells.
机译:在这里,对聚合物:富勒烯混合行为对聚合物太阳能电池的性能,薄膜微结构,光物理和器件物理的影响进行了全面的研究。特别地,研究了表现出超过9%的功率转换效率的供体聚合物PBDTTT-EFT与受体PC71BM的共混物。通过调节PBDTTT-EFT:PC71BM共混物中富勒烯的浓度,结合基于同步加速器的X射线散射和光谱技术,系统地研究了富勒烯混合行为的影响。富勒烯负载对光物理和器件物理的影响将通过稳态光致发光测量,超快速瞬态吸收光谱和瞬态光电压测量得到进一步探讨。在低富勒烯浓度范围(<50 wt%)下,大多数富勒烯分子分散在聚合物基质中,由于缺乏纯富勒烯聚集体和电荷分离和运输的渗滤途径,导致严重的复方和非复方重组。在较高的富勒烯浓度范围(> 70 wt%)下,较大的富勒烯域导致富勒烯分子的存在导致PC71BM激子收割不完全,也破坏了聚合物微晶的分子堆积。最佳富勒烯浓度接近60-67 wt%,可以平衡电荷产生和电荷收集的要求。这些发现表明,控制混合相中富勒烯的浓度并优化纯相和混合相之间的平衡对于最大化高度混合的聚合物/富勒烯太阳能电池的效率至关重要。

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