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Achieving Balanced Crystallization Kinetics of Donor and Acceptor by Sequential-Blade Coated Double Bulk Heterojunction Organic Solar Cells

机译:通过顺序叶片涂层双散差有机太阳能电池实现额定施主和受体的平衡结晶动力学

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Abstract Sequential deposition has great potential to achieve high performance in organic solar cells due to the resulting well‐controlled vertical phase separation. In this work, double bulk heterojunction organic solar cells are fabricated by sequential‐blade cast in ambient conditions. Probed by the in situ grazing incidence X‐ray diffraction and in situ UV–vis absorption measurements, the seq‐blade system exhibits a different tendency from each of the binary films during the film formation process. Due to the extensive aggregation of FOIC, the binary PBDB‐T:FOIC film displays a strong and large phase separation, resulting in low current density (Jsc) and unsatisfactory power conversion efficiency. In the seq‐blade cast system, the bottom layer PBDB‐T:IT‐M produces many crystal nuclei for the top layer PBDB‐T:FOIC, so the PBDB‐T molecules are able to crystallize easily and quickly. Balanced crystallization kinetics between polymer and small molecule and an ideal percolation network in the film are observed. In addition, the balanced crystallization kinetics are favorable toward realizing lower recombination loss through charge transport processes.
机译:摘要连续沉积由于由此产生的良好控制的垂直相分离而在有机太阳能电池中实现高性能巨大潜力。在这项工作中,通过在环境条件下序列叶片制造双块状异质结有机太阳能电池。通过原位放牧入射X射线衍射探测和原位UV-Vis吸收测量,SEQ-Blade系统在膜形成过程中表现出来自每个二元膜的不同趋势。由于FOIC的广泛聚集,二进制PBDB-T:FOIC膜显示出强大的相分离,导致电流密度低(JSC)和不令人满意的功率转换效率。在SEQ-BLADE铸造系统中,底层PBDB-T:IT-M产生顶层PBDB-T:FOIC的许多晶体核,因此PBDB-T分子能够容易且快速地结晶。观察聚合物和小分子之间的平衡结晶动力学以及薄膜中的理想渗透网络。此外,平衡结晶动力学是有利的,旨在通过电荷传输过程实现较低的重组损耗。

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