Diffusion-Limited Crystallization: A Rationale for the Thermal Stability of Non-Fullerene Solar Cells.

Clicks: 244
ID: 54549
2019
Organic solar cells are thought to suffer from poor thermal stability of the active layer nanostructure, a common belief that is based on the extensive work that has been carried out on fullerene-based systems. We show that a widely studied non-fullerene acceptor, the indacenodithienothiophene-based acceptor ITIC, crystallizes in a profoundly different way as compared to fullerenes. Although fullerenes are frozen below the glass-transition temperature T of the photovoltaic blend, ITIC can undergo a glass-crystal transition considerably below its high T of ∼180 °C. Nanoscopic crystallites of a low-temperature polymorph are able to form through a diffusion-limited crystallization process. The resulting fine-grained nanostructure does not evolve further with time and hence is characterized by a high degree of thermal stability. Instead, above T, the low temperature polymorph melts, and micrometer-sized crystals of a high-temperature polymorph develop, enabled by more rapid diffusion and hence long-range mass transport. This leads to the same detrimental decrease in photovoltaic performance that is known to occur also in the case of fullerene-based blends. Besides explaining the superior thermal stability of non-fullerene blends at relatively high temperatures, our work introduces a new rationale for the design of bulk heterojunctions that is not based on the selection of high- T materials per se but diffusion-limited crystallization. The planar structure of ITIC and potentially other non-fullerene acceptors readily facilitates the desired glass-crystal transition, which constitutes a significant advantage over fullerenes, and may pave the way for truly stable organic solar cells.
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Authors Yu, Liyang;Qian, Deping;Marina, Sara;Nugroho, Ferry A A;Sharma, Anirudh;Hultmark, Sandra;Hofmann, Anna I;Kroon, Renee;Benduhn, Johannes;Smilgies, Detlef-M;Vandewal, Koen;Andersson, Mats R;Langhammer, Christoph;Martín, Jaime;Gao, Feng;Müller, Christian;
Journal ACS applied materials & interfaces
Year 2019
DOI 10.1021/acsami.9b04554
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