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Organic Solar Cells with Controlled Nanostructures Based on Microphase Separation of Fullerene-Attached Thiophene-Selenophene Heteroblock Copolymers.

Peihong ChenKyohei NakanoKaori SuzukiKazuhito HashimotoTomoka KikitsuDaisuke HashizumeTomoyuki KoganezawaKeisuke Tajima
Published in: ACS applied materials & interfaces (2017)
Heteroblock copolymers consisting of poly(3-hexylthiophene) and fullerene-attached poly(3-alkylselenophene) (T-b-Se-PCBP) were synthesized for organic photovoltaic applications by quasi-living catalyst transfer polycondensation and subsequent conversion reactions. Characterization of the polymers confirmed the formation of well-defined diblock structures with high loading of the fullerene at the side chain (∼40 wt %). Heteroblock copolymer cast as a thin film showed a clear microphase-separated nanostructure approximately 30 nm in repeating unit after thermal annealing, which is identical to the microphase-separated nanostructure of diblock copolymer consisting of poly(3-hexylthiophene) and fullerene-attached poly(3-alkylthiophene) (T-b-T-PCBP). These heteroblock copolymers provide an ideal platform for investigating the effects of nanostructures and interfacial energetics on the performance of organic photovoltaic devices.
Keyphrases
  • solar cells
  • ionic liquid
  • water soluble
  • photodynamic therapy
  • high resolution
  • room temperature
  • molecular dynamics simulations
  • gold nanoparticles
  • single cell