| Literature DB >> 33432145 |
Masoud Ghasemi1,2, Nrup Balar3, Zhengxing Peng1, Huawei Hu1, Yunpeng Qin1, Taesoo Kim2, Jeromy J Rech4, Matthew Bidwell5, Walker Mask6, Iain McCulloch7,8, Wei You4, Aram Amassian2, Chad Risko6, Brendan T O'Connor9, Harald Ade10.
Abstract
Rapid increase in the power conversion efficiency of organic solar cells (OSCs) has been achieved with the development of non-fullerene small-molecule acceptors (NF-SMAs). Although the morphological stability of these NF-SMA devices critically affects their intrinsic lifetime, their fundamental intermolecular interactions and how they govern property-function relations and morphological stability of OSCs remain elusive. Here, we discover that the diffusion of an NF-SMA into the donor polymer exhibits Arrhenius behaviour and that the activation energy Ea scales linearly with the enthalpic interaction parameters χH between the polymer and the NF-SMA. Consequently, the thermodynamically most unstable, hypo-miscible systems (high χ) are the most kinetically stabilized. We relate the differences in Ea to measured and selectively simulated molecular self-interaction properties of the constituent materials and develop quantitative property-function relations that link thermal and mechanical characteristics of the NF-SMA and polymer to predict relative diffusion properties and thus morphological stability.Entities:
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Year: 2021 PMID: 33432145 DOI: 10.1038/s41563-020-00872-6
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841