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Chalcogenophene comonomer comparison in small band gap diketopyrrolopyrrole-based conjugated polymers for high-performing field-effect transistors and organic solar cells. | LitMetric

AI Article Synopsis

  • The study explores the creation and analysis of diketopyrrolopyrrole-based copolymers using different chalcogenophene comonomers (thiophene, selenophene, and tellurophene) for applications in transistors and organic solar cells.
  • The research finds that larger chalcogen atoms (from sulfur to tellurium) lower the band gaps of the polymers and improve charge carrier mobility due to increased intermolecular interactions.
  • The resulting solar cells demonstrate promising power conversion efficiencies (7.1-8.8%) and strong near-infrared responses, indicating potential for use in advanced tandem solar cell technologies.

Article Abstract

The design, synthesis, and characterization of a series of diketopyrrolopyrrole-based copolymers with different chalcogenophene comonomers (thiophene, selenophene, and tellurophene) for use in field-effect transistors and organic photovoltaic devices are reported. The effect of the heteroatom substitution on the optical, electrochemical, and photovoltaic properties and charge carrier mobilities of these polymers is discussed. The results indicate that by increasing the size of the chalcogen atom (S < Se < Te), polymer band gaps are narrowed mainly due to LUMO energy level stabilization. In addition, the larger heteroatomic size also increases intermolecular heteroatom-heteroatom interactions facilitating the formation of polymer aggregates leading to enhanced field-effect mobilities of 1.6 cm(2)/(V s). Bulk heterojunction solar cells based on the chalcogenophene polymer series blended with fullerene derivatives show good photovoltaic properties, with power conversion efficiencies ranging from 7.1-8.8%. A high photoresponse in the near-infrared (NIR) region with excellent photocurrents above 20 mA cm(-2) was achieved for all polymers, making these highly efficient low band gap polymers promising candidates for use in tandem solar cells.

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Source
http://dx.doi.org/10.1021/ja511984qDOI Listing

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