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Thiazole Imide‐Based All‐Acceptor Homopolymer: Achieving High‐Performance Unipolar Electron Transport in Organic Thin‐Film Transistors
178
Citations
39
References
2018
Year
High-performance unipolar n-type polymer semiconductors are critical for advancing the field of organic electronics, which relies on the design and synthesis of new electron-deficient building blocks with good solubilizing capability, favorable geometry, and optimized electrical properties. Herein, two novel imide-functionalized thiazoles, 5,5'-bithiazole-4,4'-dicarboxyimide (BTzI) and 2,2'-bithiazolothienyl-4,4',10,10'-tetracarboxydiimide (DTzTI), are successfully synthesized. Single crystal analysis and physicochemical study reveal that DTzTI is an excellent building block for constructing all-acceptor homopolymers, and the resulting polymer poly(2,2'-bithiazolothienyl-4,4',10,10'-tetracarboxydiimide) (PDTzTI) exhibits unipolar n-type transport with a remarkable electron mobility (μ<sub>e</sub> ) of 1.61 cm<sup>2</sup> V<sup>-1</sup> s<sup>-1</sup> , low off-currents (I<sub>off</sub> ) of 10<sup>-10</sup> -10<sup>-11</sup> A, and substantial current on/off ratios (I<sub>on</sub> /I<sub>off</sub> ) of 10<sup>7</sup> -10<sup>8</sup> in organic thin-film transistors. The all-acceptor homopolymer shows distinctive advantages over prevailing n-type donor-acceptor copolymers, which suffer from ambipolar transport with high I<sub>off</sub> s > 10<sup>-8</sup> A and small I<sub>on</sub> /I<sub>off</sub> s < 10<sup>5</sup> . The results demonstrate that the all-acceptor approach is superior to the donor-acceptor one, which results in unipolar electron transport with more ideal transistor performance characteristics.
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