Wang Cheng, Yang Yi, Lin Linlin, Xu Bowei, Hou Jianhui, Deng Yunfeng, Geng Yanhou
School of Materials Science and Engineering and Tianjin Key Laboratory of Molecular Optoelectronic Science, Tianjin University, Collaborative Innovation Center of Chemical Science and Engineering (Tianjin), Tianjin, 300072, P. R. China.
State Key Laboratory of Polymer Physics and Chemistry Institute of Chemistry, Chinese Academy of Sciences, Beijing, 100190, P. R. China.
Angew Chem Int Ed Engl. 2023 Aug 28;62(35):e202307856. doi: 10.1002/anie.202307856. Epub 2023 Jul 18.
Air stable n-type conductive molecules with high electrical conductivities and excellent device performance have important applications in organic electronics, but their synthesis remains challenging. Herein, we report three self-doped n-type conductive molecules, designated QnNs, with a closed-shell quinoidal backbone and alkyl amino chains of different lengths. The QnNs are self-doped by intermolecular electron transfer from the amino groups to the quinoidal backbone. This process is ascertained unambiguously by experiments and theoretical calculations. The use of a quinoidal structure effectively improves the self-doping level, and thus increases the electrical conductivity of self-doped n-type conductive molecules achieved by a closed-shell structure from<10 S cm to>0.03 S cm . Furthermore, the closed-shell quinoidal structure results in good air stability of the QnNs, with half-lives>73 days; and Q4N shows an electrical conductivity of 0.019 S cm even after exposure to air for 120 days. When applying Q6N as the cathode interlayer in organic solar cells (OSCs), an outstanding power conversion efficiency of up to 18.2 % was obtained, which represents one the best results in binary OSCs.
具有高电导率和优异器件性能的空气稳定型n型导电分子在有机电子学中具有重要应用,但其合成仍然具有挑战性。在此,我们报道了三种自掺杂n型导电分子,命名为QnNs,它们具有闭壳醌型骨架和不同长度的烷基氨基链。QnNs通过分子间电子从氨基转移到醌型骨架而实现自掺杂。这一过程通过实验和理论计算得到了明确证实。醌型结构的使用有效地提高了自掺杂水平,从而使通过闭壳结构实现的自掺杂n型导电分子的电导率从<10 S cm提高到>0.03 S cm 。此外,闭壳醌型结构使QnNs具有良好的空气稳定性,半衰期>73天;即使在暴露于空气中120天后,Q4N的电导率仍为0.019 S cm 。当将Q6N用作有机太阳能电池(OSC)的阴极中间层时,获得了高达18.2%的出色功率转换效率,这是二元OSC中最好的结果之一。