4.8 Article

Molecular Engineering on Bis(benzothiophene-S,S-dioxide)-Based Large-Band Gap Polymers for Interfacial Modifications in Polymer Solar Cells

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 11, Issue 49, Pages 45969-45978

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.9b15704

Keywords

benzothiophene-S,S-dioxide; amino; large-band gap polymers; polymer solar cells; cathode interfacial layers

Funding

  1. National Natural Science Foundation of China [51622302, 21733005, 91633301]
  2. Open Fund of the State Key Laboratory of Luminescent Materials and Devices (South China University of Technology) [2019-skllmd-11]
  3. Natural Science Foundation of the Jiangsu Higher Education Institutions of China [18KJB430005]
  4. National Key Research and Development Program of China [2017YFA0206600]
  5. Young Innovative Talent Program for Higher Education Institution of Guangdong Province [2018KQNCX239]
  6. Guangdong Natural Science Funds for Distinguished Young Scholar [2015A030306012]
  7. Pearl River S&T Nova Program of Guangzhou [201610010097]
  8. Guangdong Special Support Program [2017TQ04N559]

Ask authors/readers for more resources

The development of effectively universal interfacial materials for both conventional and inverted polymer solar cells (PSCs) plays a very crucial role in achieving highly photovoltaic performance and feasible device engineering. In this study, two novel alcohol-soluble conjugated polymers (PBSONP and PBSON-FEO) with bis(benzothiophene-S,S-dioxide)fused aromatics (FBTO) as the core unit and amino as functional groups are synthesized. They are utilized as universal cathode interfacial layers for both conventional and inverted PSCs simultaneously. Ascribing to the enlarged conjugated planarity and higher electron affinity for an FBTO unit, both PBSON-P and PBSON-FEO exhibit versatile electron-transporting abilities. They show wide band gaps that are important for light absorption in inverted PSCs, at which point PBSON-P reported small band gap cathode interfacial materials. Importantly, and PBSON-FEO are more progressive than some of the PBSON-P and PBSON-FEO display deep highest occupied molecular orbital energy levels, which can block holes at the cathode and thus increase the fill factor. As a result, both conventional and inverted PSCs using PBSON-P and PBSON-FEO as cathode interlayers realize high photovoltaic performance. Therefore, this series of novel polymers are amphibious cathode interfacial materials for high-performance conventional and inverted PSCs.

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