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

富勒烯 材料科学 结晶 玻璃化转变 热稳定性 接受者 有机太阳能电池 化学工程 微晶 纳米技术 纳米结构 化学物理 聚合物 复合材料 有机化学 化学 工程类 物理 冶金 凝聚态物理
作者
Liyang Yu,Deping Qian,Sara Marina,Ferry Anggoro Ardy Nugroho,Anirudh Sharma,Sandra Hultmark,Anna Hofmann,Renee Kroon,Johannes Benduhn,Detlef‐M. Smilgies,Koen Vandewal,Mats R. Andersson,Christoph Langhammer,Jaime Martín,Feng Gao,Christian Müller
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:11 (24): 21766-21774 被引量:103
标识
DOI:10.1021/acsami.9b04554
摘要

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 Tg of the photovoltaic blend, ITIC can undergo a glass-crystal transition considerably below its high Tg 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 Tg, 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- Tg 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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