| Literature DB >> 29403053 |
Long Ye1, Huawei Hu2, Masoud Ghasemi1, Tonghui Wang3,4, Brian A Collins1,5, Joo-Hyun Kim1, Kui Jiang2,6, Joshua H Carpenter1, Hong Li3,4, Zhengke Li2, Terry McAfee1, Jingbo Zhao2, Xiankai Chen3,4, Joshua Lin Yuk Lai2, Tingxuan Ma2, Jean-Luc Bredas3,4, He Yan7,8, Harald Ade9.
Abstract
Although it is known that molecular interactions govern morphology formation and purity of mixed domains of conjugated polymer donors and small-molecule acceptors, and thus largely control the achievable performance of organic solar cells, quantifying interaction-function relations has remained elusive. Here, we first determine the temperature-dependent effective amorphous-amorphous interaction parameter, χaa(T), by mapping out the phase diagram of a model amorphous polymer:fullerene material system. We then establish a quantitative 'constant-kink-saturation' relation between χaa and the fill factor in organic solar cells that is verified in detail in a model system and delineated across numerous high- and low-performing materials systems, including fullerene and non-fullerene acceptors. Our experimental and computational data reveal that a high fill factor is obtained only when χaa is large enough to lead to strong phase separation. Our work outlines a basis for using various miscibility tests and future simulation methods that will significantly reduce or eliminate trial-and-error approaches to material synthesis and device fabrication of functional semiconducting blends and organic blends in general.Entities:
Year: 2018 PMID: 29403053 DOI: 10.1038/s41563-017-0005-1
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841