三元运算
有机太阳能电池
接受者
材料科学
光伏系统
有机半导体
光电子学
异质结
计算机科学
聚合物
生态学
物理
复合材料
生物
程序设计语言
凝聚态物理
作者
Yongxi Li,Xinjing Huang,Austin Mencke,Sunil Kumar Kandappa,Tonghui Wang,Kan Ding,Zuo‐Quan Jiang,Aram Amassian,Liang‐Sheng Liao,Mark E. Thompson,Stephen R. Forrest
标识
DOI:10.1073/pnas.2301118120
摘要
For organic photovoltaic (OPV) devices to achieve consistent performance and long operational lifetimes, organic semiconductors must be processed with precise control over their purity, composition, and structure. This is particularly important for high volume solar cell manufacturing where control of materials quality has a direct impact on yield and cost. Ternary-blend OPVs containing two acceptor-donor-acceptor (A-D-A)-type nonfullerene acceptors (NFAs) and a donor have proven to be an effective strategy to improve solar spectral coverage and reduce energy losses beyond that of binary-blend OPVs. Here, we show that the purity of such a ternary is compromised during blending to form a homogeneously mixed bulk heterojunction thin film. We find that the impurities originate from end-capping C=C/C=C exchange reactions of A-D-A-type NFAs, and that their presence influences both device reproducibility and long-term reliability. The end-capping exchange results in generation of up to four impurity constituents with strong dipolar character that interfere with the photoinduced charge transfer process, leading to reduced charge generation efficiency, morphological instabilities, and an increased vulnerability to photodegradation. As a consequence, the OPV efficiency falls to less than 65% of its initial value within 265 h when exposed to up to 10 suns intensity illumination. We propose potential molecular design strategies critical to enhancing the reproducibility as well as reliability of ternary OPVs by avoiding end-capping reactions.
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