Northwestern Polytechnical University, Xi'an, 710129, China.
Shaanxi Normal University, Xi'an, 710119, China.
Small. 2022 Jan;18(3):e2103804. doi: 10.1002/smll.202103804. Epub 2021 Nov 25.
Long coherence lengths (CLs) of crystals and proper intermixed phase amount guarantee charge transport and exciton dissociate efficiently, which is crucial for organic solar cells (OSCs) to achieve high device performance. However, extending CLs usually reduces the intermixed phase, leading to an insufficient interface for exciton dissociation. Herein, a strategy using a binary polymer with different molecular weights as donor is employed, that is, poly(3-hexylthiophene-2,5-diyl) (P3HT) with high (P3HT-H) and low (P3HT-L) molecular weight are blended as donor, and (5Z,5'Z)-5,5'-(((4,4,9,9-tetraoctyl-4,9-dihydro-s-indaceno[1,2-b:5,6-b']dithiophene-2,7-diyl)bis(benzo[c][1,2,5]thiadiazole-7,4-diyl))bis(methanylylidene))bis(3-ethyl-2-thioxothiazolidin-4-one) (O-IDTBR) is used as acceptor. In kinetics, the entanglements of P3HT-H are relieved due to the higher molecular diffusivity of P3HT-L. In thermodynamics, the miscibility of P3HT-L/O-IDTBR, P3HT-H/O-IDTBR, and P3HT-L/P3HT-H blends increases in turn. Hence, P3HT forms a more ordered structure with longer CLs after adding P3HT-L, which also drives O-IDTBR dispersed in P3HT crystalline regions diffuse to the O-IDTBR crystalline regions to further self-organize. Consequently, the CLs of both P3HT and O-IDTBR are extended, while keeping the intermixed phase amount proper. The optimized microstructure boosts device performance from 7.03% to 7.80%, which is one of the highest values reported for P3HT/O-IDTBR blends. This is a novel way to solve the conflict mentioned above, which may provide guidance to finely regulating the morphology of the active layer.
长的晶体相干长度 (CLs) 和适当的混合相数量保证了电荷传输和激子有效地解离,这对于有机太阳能电池 (OSCs) 实现高器件性能至关重要。然而,延长 CLs 通常会减少混合相,导致激子解离的界面不足。在此,采用了一种使用具有不同分子量的二元聚合物作为给体的策略,即使用高分子量的聚(3-己基噻吩-2,5-二基)(P3HT-H)和低分子量的聚(3-己基噻吩-2,5-二基)(P3HT-L)作为给体进行共混,并使用(5Z,5'Z)-5,5'-(((4,4,9,9-四辛基-4,9-二氢-茚并[1,2-b:5,6-b']二噻吩-2,7-二基)双(苯并[c][1,2,5]噻二唑-7,4-二基))双(亚甲基)双(3-乙基-2-噻唑啉-4-酮))(O-IDTBR)作为受体。在动力学方面,由于 P3HT-L 的分子扩散率较高,P3HT-H 的缠结得到缓解。在热力学方面,P3HT-L/O-IDTBR、P3HT-H/O-IDTBR 和 P3HT-L/P3HT-H 共混物的混溶性依次增加。因此,加入 P3HT-L 后,P3HT 形成了更有序的结构,具有更长的 CLs,同时也促使 O-IDTBR 分散在 P3HT 晶区扩散到 O-IDTBR 晶区进一步自组织。因此,P3HT 和 O-IDTBR 的 CLs 都得到了扩展,同时保持了适当的混合相数量。优化后的微结构将器件性能从 7.03%提高到 7.80%,这是 P3HT/O-IDTBR 共混物中报告的最高值之一。这是解决上述冲突的一种新方法,可能为精细调节活性层形态提供指导。