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      High-Molecular-Weight Electroactive Polymer Additives for Simultaneous Enhancement of Photovoltaic Efficiency and Mechanical Robustness in High-Performance Polymer Solar Cells

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          Abstract

          The development of small-molecule acceptors (SMAs) has significantly enhanced the power conversion efficiency (PCE) of polymer solar cells (PSCs); however, the inferior mechanical properties of SMA-based PSCs often limit their long-term stability and application in wearable power generators. Herein, we demonstrate a simple and effective strategy for enhancing the mechanical robustness and PCE of PSCs by incorporating a high-molecular-weight (MW) polymer acceptor ( P A, P(NDI2OD-T2)). The addition of 10–20 wt % P A leads to a more than 4-fold increase in the mechanical ductility of the SMA-based PSCs in terms of the crack onset strain (COS). At the same time, the incorporation of P A into the active layer improves the charge transport and recombination properties, increasing the PCE of the PSC from 14.6 to 15.4%. The added P As act as tie molecules, providing mechanical and electrical bridges between adjacent domains of SMAs. Thus, for the first time, we produce highly efficient and mechanically robust PSCs with a 15% PCE and 10% COS at the same time, thereby demonstrating their great potential as stretchable or wearable power generators. To understand the origin of the dual enhancements realized by P A, we investigate the influence of the P A content on electrical, structural, and morphological properties of the PSCs.

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          Single-Junction Organic Solar Cell with over 15% Efficiency Using Fused-Ring Acceptor with Electron-Deficient Core

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            Non-fullerene acceptors for organic solar cells

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              A high-mobility electron-transporting polymer for printed transistors.

              Printed electronics is a revolutionary technology aimed at unconventional electronic device manufacture on plastic foils, and will probably rely on polymeric semiconductors for organic thin-film transistor (OTFT) fabrication. In addition to having excellent charge-transport characteristics in ambient conditions, such materials must meet other key requirements, such as chemical stability, large solubility in common solvents, and inexpensive solution and/or low-temperature processing. Furthermore, compatibility of both p-channel (hole-transporting) and n-channel (electron-transporting) semiconductors with a single combination of gate dielectric and contact materials is highly desirable to enable powerful complementary circuit technologies, where p- and n-channel OTFTs operate in concert. Polymeric complementary circuits operating in ambient conditions are currently difficult to realize: although excellent p-channel polymers are widely available, the achievement of high-performance n-channel polymers is more challenging. Here we report a highly soluble ( approximately 60 g l(-1)) and printable n-channel polymer exhibiting unprecedented OTFT characteristics (electron mobilities up to approximately 0.45-0.85 cm(2) V(-1) s(-1)) under ambient conditions in combination with Au contacts and various polymeric dielectrics. Several top-gate OTFTs on plastic substrates were fabricated with the semiconductor-dielectric layers deposited by spin-coating as well as by gravure, flexographic and inkjet printing, demonstrating great processing versatility. Finally, all-printed polymeric complementary inverters (with gain 25-65) have been demonstrated.
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                Author and article information

                Journal
                JACS Au
                JACS Au
                au
                jaaucr
                JACS Au
                American Chemical Society
                2691-3704
                15 April 2021
                24 May 2021
                : 1
                : 5
                : 612-622
                Affiliations
                [1] Department of Chemical and Biomolecular Engineering and §Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology (KAIST) , Daejeon 34141, Republic of Korea
                [|| ]Department of Chemical and Biomolecular Engineering, Sogang University , Seoul 04107, Republic of Korea
                Author notes
                [* ]Email: tskim1@ 123456kaist.ac.kr . (T.-S.K.)
                [* ]Email: bumjoonkim@ 123456kaist.ac.kr . (B.J.K.)
                Author information
                http://orcid.org/0000-0003-1742-1349
                http://orcid.org/0000-0002-2825-7778
                http://orcid.org/0000-0001-7783-9689
                Article
                10.1021/jacsau.1c00064
                8395705
                a88bc75c-c576-4a3e-9fb4-575d81890030
                © 2021 The Authors. Published by American Chemical Society

                Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works ( https://creativecommons.org/licenses/by-nc-nd/4.0/).

                History
                : 13 February 2021
                Funding
                Funded by: National Research Foundation of Korea, doi 10.13039/501100003725;
                Award ID: 2019R1A2B5B03101123
                Funded by: Korea Institute of Energy Technology Evaluation and Planning, doi 10.13039/501100007053;
                Award ID: 20183010014470
                Funded by: National Research Foundation of Korea, doi 10.13039/501100003725;
                Award ID: 2020R1A4A1018516
                Categories
                Article
                Custom metadata
                au1c00064
                au1c00064

                polymer solar cell,nonfullerene small-molecule acceptor,high-molecular-weight polymer additive,mechanical robustness,high efficiency

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