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      Development of quinoxaline based polymers for photovoltaic applications

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          Abstract

          An overview of quinoxaline (Qx) based organic semiconducting materials, and their unique building blocks for photovoltaic applications, has been provided.

          Abstract

          Polymer solar cells (PSCs) with a bulk heterojunction (BHJ) structure, i.e. a blend of a p-type conjugated polymer with an n-type semiconductor acceptor, have made rapid progress over the past decade. In comparison with inorganic semiconductor solar cells, PSCs have the advantages of low cost, light weight, solution processability and good mechanical flexibility. In the last few years, various classes of electron-donating polymers have been reported for PSCs. Among them, quinoxaline (Qx) and its derivatives have been widely used as building blocks for optoelectronic applications because they can be easily modified by varying the side chains, such as alkyl chains, conjugated aromatic rings, functional groups, etc. Recently, a power conversion efficiency (PCE) of over 11% was achieved for PSCs with Qx-based polymers. This PCE is among the best for PSCs, and it suggests that Qx-based polymers have great potential for highly efficient PSCs. In this article, we review the recent advances in the design and synthesis of such Qx-based conjugated polymers for photovoltaic applications. Particular attention is paid to the chemical structures of the polymers including flexible chains, conjugated side chains, functional groups, Qx derivatives and the effect of the molecular structure on device performance parameters. We believe that further development of Qx-based polymers will lead to a PCE >12% in the near future.

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          An electron acceptor challenging fullerenes for efficient polymer solar cells.

          A novel non-fullerene electron acceptor (ITIC) that overcomes some of the shortcomings of fullerene acceptors, for example, weak absorption in the visible spectral region and limited energy-level variability, is designed and synthesized. Fullerene-free polymer solar cells (PSCs) based on the ITIC acceptor are demonstrated to exhibit power conversion efficiencies of up to 6.8%, a record for fullerene-free PSCs.
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            Design Rules for Donors in Bulk-Heterojunction Solar Cells—Towards 10 % Energy-Conversion Efficiency

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              Synthesis of conjugated polymers for organic solar cell applications.

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                Author and article information

                Contributors
                (View ORCID Profile)
                Journal
                JMCCCX
                Journal of Materials Chemistry C
                J. Mater. Chem. C
                Royal Society of Chemistry (RSC)
                2050-7526
                2050-7534
                2017
                2017
                : 5
                : 8
                : 1858-1879
                Affiliations
                [1 ]College of Chemistry and Chemical Engineering
                [2 ]Central South University
                [3 ]Changsha 410083
                [4 ]China
                [5 ]Department of Materials and Engineering
                [6 ]National University of Singapore
                [7 ]Singapore 117574
                [8 ]Institute of Macromolecular Chemistry
                [9 ]Academy of Sciences of the Czech Republic
                [10 ]162 06 Prague 6
                [11 ]Czech Republic
                [12 ]Canada Research Chair on Electroactive and Photoactive Polymers
                [13 ]Department of Chemistry
                [14 ]Université Laval
                [15 ]Quebec City
                [16 ]Canada
                Article
                10.1039/C6TC05381E
                550f6ef1-d959-4a0f-9480-80d59dfae8dd
                © 2017
                History

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