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Cooperative effects of solvent and polymer acceptor co-additives in P3HT:PDI solar cells: simultaneous optimization in lateral and vertical phase separation

机译:溶剂和聚合物受体共添加剂在P3HT:PDI太阳能电池中的协同作用:同时优化横向和纵向相分离

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摘要

In this work, solvent chloronaphthalene (CN) and polymer acceptor an alternating copolymer of perylene diimide and carbazole (PCPDI) were utilized as co-additives to optimize the nanoscale phase-separated morphology and photovoltaic properties of bulk-heterojunction (BHJ) polymer solar cells based on the poly(3-hexyl thiophene) (P3HT)/N,N'-bis(1-ethylpropyl)-perylene-3,4,9,10-tetracarboxylic diimide (EP-PDI) system. The domain size of EP-PDI molecules together with that of P3HT distinctly decreased by adding a 0.75 vol% CN additive. The optimized lateral phase separation increased the donor-acceptor interfacial area and facilitated the exciton dissociation process, leading to 5-fold enhancement of short-circuit current (J_(SC)). Furthermore, when PCPDI was employed as a co-additive, acceptor materials (including PCPDI and EP-PDI) were prone to aggregation towards the top surface of blend films, improving vertical phase separation of active layers. PCPDI incorporation, which improved the percolation pathways for electron carriers, suppressed the crystallinity of P3HT distinctly. Thus, much more balanced charge transport was achieved by PCPDI addition, which resulted in almost 1-fold enhancement of open-circuit voltage (V_(OC)) by reducing nongeminate recombination. As a consequence, cooperative effects of CN and PCPDI additives improved the nanoscale phase-separated morphology in lateral and vertical directions simultaneously, achieving the enhancement in both V_(OC) and J_(SC).
机译:在这项工作中,溶剂氯萘(CN)和per二酰亚胺和咔唑的交替共聚物(PCPDI)的聚合物受体被用作共添加剂,以优化体相异质结(BHJ)聚合物太阳能电池的纳米级相分离形态和光伏性能。基于聚(3-己基噻吩)(P3HT)/ N,N'-双(1-乙基丙基)-per-3,4,9,10-四羧酸二酰亚胺(EP-PDI)体系。通过添加0.75%(体积)的CN添加剂,EP-PDI分子的结构域尺寸与P3HT的结构域尺寸明显减小。优化的横向相分离增加了供体-受体界面面积,并促进了激子离解过程,导致短路电流(J_(SC))提高了5倍。此外,当将PCPDI用作共添加剂时,受体材料(包括PCPDI和EP-PDI)易于朝混合膜的顶表面聚集,从而改善了活性层的垂直相分离。 PCPDI的引入改善了电子载体的渗透途径,从而明显抑制了P3HT的结晶度。因此,通过添加PCPDI,可以实现更加平衡的电荷传输,这通过减少非gegege重组而导致开路电压(V_(OC))几乎提高了1倍。结果,CN和PCPDI添加剂的协同作用同时改善了横向和垂直方向上的纳米级相分离形态,同时实现了V_(OC)和J_(SC)的增强。

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