4.7 Article

Comparative Study of Selenophene- and Thiophene-Containing n-Type Semiconducting Polymers for High Performance All-Polymer Solar Cells

Journal

ACS APPLIED POLYMER MATERIALS
Volume 3, Issue 1, Pages 49-59

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsapm.0c00772

Keywords

all-polymer solar cells; n-type semiconducting polymer; naphthalenediimide-selenophene copolymer; naphthalenediimide-thiophene copolymer; blend morphology; donor-acceptor copolymer; electron transport

Funding

  1. NSF [DMR-1708450]
  2. Office of Naval Research [N00014-17-1-2203]
  3. University of Washington Clean Energy Institute Fellowship
  4. Japan Synchrotron Radiation Research Institute (JASRI) [2018A1744]

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The study demonstrates that the substitution of selenophene for thiophene in donor-acceptor copolymers enhances the intrinsic polymer properties and the performance of all-polymer solar cells incorporating them.
Effects of the donor moiety substitution on the intrinsic and photovoltaic blend properties of n-type semiconducting naphthalene diimide-arylene copolymers with donor-acceptor structure were investigated. The alternating naphthalene diimide-thiophene copolymer, PNDIT-hd, and naphthalene diimide-selenophene copolymer, PNDIS-hd, were found to have identical electrochemically derived electronic structures and similar bulk electron mobility; however, PNDIS-hd has an optical bandgap of 1.70 eV, which is 0.07 eV narrower relative to that of PNDIT-hd. All-polymer solar cells incorporating the donor polymer, PBDB-T, and PNDIS-hd were found to combine a high power conversion efficiency of 8.4% with high external quantum efficiency (86%) and a high fill factor of 0.71, which are significantly enhanced compared to the corresponding PBDB-T:PNDIT-hd devices with 6.7% power conversion efficiency and 73% external quantum efficiency. The improved photovoltaic properties of the selenophene-containing acceptor copolymer relative to the thiophene counterpart originate from enhanced light harvesting, more favorable molecular packing in blends, and reduced charge recombination losses in devices. These findings demonstrate that selenophene substitution for thiophene in donor-acceptor copolymers is an effective strategy that enhances the intrinsic polymer properties as well as the performance of all-polymer solar cells incorporating them.

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