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Indolo[3,2-b]indole-based crystalline hole-transporting material for highly efficient perovskite solar cells.


ABSTRACT: We have designed and synthesized fluorinated indolo[3,2-b]indole (IDID) derivatives as crystalline hole-transporting materials (HTM) for perovskite solar cells. The fluorinated IDID backbone enables a tight molecular arrangement stacked by strong ?-? interactions, leading to a higher hole mobility than that of the current HTM standard, p,p-spiro-OMeTAD, with a spherical shape and amorphous morphology. Moreover, the photoluminescence quenching in a perovskite/HTM film is more effective at the interface of the perovskite with IDIDF as compared to that of p,p-spiro-OMeTAD. As a consequence, the device fabricated using IDIDF shows superior photovoltaic properties compared to that using p,p-spiro-OMeTAD, exhibiting an optimal performance of 19%. Thus, this remarkable result demonstrates IDID core-based materials as a new class of HTMs for highly efficient perovskite solar cells.

SUBMITTER: Cho I 

PROVIDER: S-EPMC5299807 | biostudies-other | 2017 Jan

REPOSITORIES: biostudies-other

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Indolo[3,2-<i>b</i>]indole-based crystalline hole-transporting material for highly efficient perovskite solar cells.

Cho Illhun I   Jeon Nam Joong NJ   Kwon Oh Kyu OK   Kim Dong Won DW   Jung Eui Hyuk EH   Noh Jun Hong JH   Seo Jangwon J   Seok Sang Il SI   Park Soo Young SY  

Chemical science 20160905 1


We have designed and synthesized fluorinated indolo[3,2-<i>b</i>]indole (IDID) derivatives as crystalline hole-transporting materials (HTM) for perovskite solar cells. The fluorinated IDID backbone enables a tight molecular arrangement stacked by strong π-π interactions, leading to a higher hole mobility than that of the current HTM standard, <i>p</i>,<i>p</i>-spiro-OMeTAD, with a spherical shape and amorphous morphology. Moreover, the photoluminescence quenching in a perovskite/HTM film is more  ...[more]

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