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Singlet Fission in a Pyrrole-Fused Cross-Conjugated Skeleton with Adaptive Aromaticity

机译:吡咯熔融交叉共轭骨架中的单线裂变,具有自适应芳香性

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摘要

Singlet fission (SF) materials hold the potential to increase the power conversion efficiency of solar cells by reducing the thermalization of high-energy excited states. The major hurdle in realizing this potential is the limited scope of SF-active materials with high fission efficiency, suitable energy levels, and sufficient chemical stability. Herein, using theoretical calculation and time-resolved spectroscopy, we developed a highly stable SF material based on dipyrrolonaphthyridinedione (DPND), a pyrrole-fused cross-conjugated skeleton with a distinctive adaptive aromaticity (dual aromaticity) character. The embedded pyrrole ring with 4n+2π-electron features aromaticity in the ground state, while the dipole resonance of the amide bonds promotes a 4n π-electron Baird's aromaticity in the triplet state. Such an adaptive aromaticity renders the molecule efficient for the SF process [E(S_1 ≥ 2E(T_1)] without compromising its stability. Up to 173% triplet yield, strong blue-green light absorption, and suitable triplet energy of 1.2 eV, as well as excellent stability, make DPND a promising SF sensitizer toward practical applications.
机译:单向裂变(SF)材料通过降低高能兴奋状态的热化来提高太阳能电池的电力转换效率。实现这一潜力的主要障碍是SF活性材料具有高裂变效率,适当能量水平和足够的化学稳定性的有限范围。这里,使用理论计算和时间分辨光谱,我们开发了一种基于偶氮萘的高度稳定的SF材料,一种具有独特的自适应芳香性(双芳香性)特征的吡咯稠合的交叉共轭骨架。具有4N +2π-电子的嵌入式吡咯环在接地状态下具有芳香性,而酰胺键的偶极谐振促进了三重态状态下的4Nπ-电子Baird的芳香性。这种自适应芳香度使得SF过程的分子有效[E(S_1≥2E(T_1)]而不会损害其稳定性。高达173%的三重态产量,强烈的蓝绿色光吸收,以及1.2 eV的合适三重态能量。以及出色的稳定性,使DPND成为实际应用的有希望的SF敏感剂。

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  • 来源
    《Journal of the American Chemical Society》 |2020年第23期|10235-10239|共5页
  • 作者单位

    Key Laboratory of Interface Science and Engineering in Advanced Materials Ministry of Education Taiyuan University of Technology Taiyuan 030024 China;

    State Key Laboratory of Physical Chemistry of Solid Surfaces and Collaborative Innovation Center of Chemistry for Energy Materials (iChEM) Fujian Provincial Key Laboratory of Theoretical and Computational Chemistry and Department of Chemistry College of Chemistry and Chemical Engineering Xiamen University Xiamen 361005 China;

    Key Laboratory of Interface Science and Engineering in Advanced Materials Ministry of Education Taiyuan University of Technology Taiyuan 030024 China;

    Beijing Key Laboratory for Optical Materials and Photonic Devices Department of Chemistry Capital Normal University Beijing 100048 China;

    Key Laboratory of Interface Science and Engineering in Advanced Materials Ministry of Education Taiyuan University of Technology Taiyuan 030024 China;

    State Key Laboratory of Physical Chemistry of Solid Surfaces and Collaborative Innovation Center of Chemistry for Energy Materials (iChEM) Fujian Provincial Key Laboratory of Theoretical and Computational Chemistry and Department of Chemistry College of Chemistry and Chemical Engineering Xiamen University Xiamen 361005 China;

    Institute of Molecular Plus School of Chemical Engineering and Technology Tianjin University Collaborative Innovation Center of Chemical Science and Engineering (Tianjin) Tianjin 300072 China;

    Beijing Key Laboratory for Optical Materials and Photonic Devices Department of Chemistry Capital Normal University Beijing 100048 China Institute of Molecular Plus School of Chemical Engineering and Technology Tianjin University Collaborative Innovation Center of Chemical Science and Engineering (Tianjin) Tianjin 300072 China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 22:16:45

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