TY - JOUR
T1 - Fluorination-enabled optimal morphology leads to over 11% efficiency for inverted small-molecule organic solar cells
AU - Deng, Dan
AU - Zhang, Yajie
AU - Zhang, Jianqi
AU - Wang, Zaiyu
AU - Zhu, Lingyun
AU - Fang, Jin
AU - Xia, Benzheng
AU - Wang, Zhen
AU - Lu, Kun
AU - Ma, Wei
AU - Wei, Zhixiang
N1 - Publisher Copyright:
© The Author(s) 2016.
PY - 2016/12/19
Y1 - 2016/12/19
N2 - Solution-processable small molecules for organic solar cells have attracted intense attention for their advantages of definite molecular structures compared with their polymer counterparts. However, the device efficiencies based on small molecules are still lower than those of polymers, especially for inverted devices, the highest efficiency of which is <9%. Here we report three novel solution-processable small molecules, which contain I €-bridges with gradient-decreased electron density and end acceptors substituted with various fluorine atoms (0F, 1F and 2F, respectively). Fluorination leads to an optimal active layer morphology, including an enhanced domain purity, the formation of hierarchical domain size and a directional vertical phase gradation. The optimal morphology balances charge separation and transfer, and facilitates charge collection. As a consequence, fluorinated molecules exhibit excellent inverted device performance, and an average power conversion efficiency of 11.08% is achieved for a two-fluorine atom substituted molecule.
AB - Solution-processable small molecules for organic solar cells have attracted intense attention for their advantages of definite molecular structures compared with their polymer counterparts. However, the device efficiencies based on small molecules are still lower than those of polymers, especially for inverted devices, the highest efficiency of which is <9%. Here we report three novel solution-processable small molecules, which contain I €-bridges with gradient-decreased electron density and end acceptors substituted with various fluorine atoms (0F, 1F and 2F, respectively). Fluorination leads to an optimal active layer morphology, including an enhanced domain purity, the formation of hierarchical domain size and a directional vertical phase gradation. The optimal morphology balances charge separation and transfer, and facilitates charge collection. As a consequence, fluorinated molecules exhibit excellent inverted device performance, and an average power conversion efficiency of 11.08% is achieved for a two-fluorine atom substituted molecule.
UR - https://www.scopus.com/pages/publications/85006819054
U2 - 10.1038/ncomms13740
DO - 10.1038/ncomms13740
M3 - 文章
AN - SCOPUS:85006819054
SN - 2041-1723
VL - 7
JO - Nature Communications
JF - Nature Communications
M1 - 13740
ER -