4.8 Article

An Unfused-Core-Based Nonfullerene Acceptor Enables High-Efficiency Organic Solar Cells with Excellent Morphological Stability at High Temperatures

Journal

ADVANCED MATERIALS
Volume 30, Issue 6, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.201705208

Keywords

morphological stability; noncovalent interactions; nonfullerene acceptors; organic solar cells; unfused-core acceptors

Funding

  1. National Natural Science Foundation of China [21734008, 21474088, 51473142, 51561145001, 51620105006, 61721005]
  2. 973 Program [2014CB643503]
  3. Zhejiang Province Science and Technology Plan [2018C01047]
  4. Fundamental Research Funds for the Central Universities [2016FZA4007]
  5. Department of Energy (DOE), Office of Science
  6. Office of Basic Energy Sciences
  7. [N00014-15-1-2244]

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Most nonfullerene acceptors developed so far for high-performance organic solar cells (OSCs) are designed in planar molecular geometry containing a fused-ring core. In this work, a new nonfullerene acceptor of DF-PCIC is synthesized with an unfused-ring core containing two cyclopentadithiophene (CPDT) moieties and one 2,5-difluorobenzene (DFB) group. A nearly planar geometry is realized through the F center dot center dot center dot H noncovalent interaction between CPDT and DFB for DF-PCIC. After proper optimizations, the OSCs with DF-PCIC as the acceptor and the polymer PBDB-T as the donor yield the best power conversion efficiency (PCE) of 10.14% with a high fill factor of 0.72. To the best of our knowledge, this efficiency is among the highest values for the OSCs with nonfullerene acceptors owning unfused-ring cores. Furthermore, no obvious morphological changes are observed for the thermally treated PBDB-T:DF-PCIC blended films, and the relevant devices can keep approximate to 70% of the original PCEs upon thermal treatment at 180 degrees C for 12 h. This tolerance of such a high temperature for so long time is rarely reported for fullerene-free OSCs, which might be due to the unique unfused-ring core of DF-PCIC. Therefore, the work provides new idea for the design of new nonfullerene acceptors applicable in commercial OSCs in the future.

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