| Literature DB >> 33436619 |
Zaiyu Wang1,2, Ke Gao3, Yuanyuan Kan4, Ming Zhang1, Chaoqun Qiu1, Lei Zhu1, Zhe Zhao1, Xiaobin Peng5, Wei Feng6, Zhiyuan Qian7, Xiaodan Gu7, Alex K-Y Jen8,9, Ben Zhong Tang2, Yong Cao5, Yongming Zhang1, Feng Liu10.
Abstract
The active layer morphology transition of organic photovoltaics under non-equilibrium conditions are of vital importance in determining the device power conversion efficiency and stability; however, a general and unified picture on this issue has not been well addressed. Using combined in situ and ex situ morphology characterizations, morphological parameters relating to kinetics and thermodynamics of morphology evolution are extracted and studied in model systems under thermal annealing. The coupling and competition of crystallization and demixing are found to be critical in morphology evolution, phase purification and interfacial orientation. A unified model summarizing different phase diagrams and all possible kinetic routes is proposed. The current observations address the fundamental issues underlying the formation of the complex multi-length scale morphology in bulk heterojunction blends and provide useful morphology optimization guidelines for processing devices with higher efficiency and stability.Entities:
Year: 2021 PMID: 33436619 DOI: 10.1038/s41467-020-20515-3
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919