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The Green Box: An Electronically Versatile Perylene Diimide Macrocyclic Host for Fullerenes

机译:绿盒:富勒烯的电子通用Per二酰亚胺大环主体

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摘要

The powerful electron accepting ability of fullerenes makes them ubiquitous components in biomimetic donor-acceptor systems that model the intermolecular electron transfer processes of Nature's photosynthetic center. Exploiting perylene diimides (PDIs) as components in cyclic host systems for the noncovalent recognition of fullerenes is unprecedented, in part because archetypal PDIs are also electron deficient, making dyad assembly formation electronically unfavorable. To address this, we report the strategic design and synthesis of a novel large, macrocyclic receptor composed of two covalently strapped electron-rich bis-pyrrolidine PDI panels, nicknamed the "Green Box" due to its color. Through the principle of electronic complementarity, the Green Box exhibits strong recognition of pristine fullerenes (C_(60/70)), with the noncovalent ground and excited state interactions that occur upon fullerene guest encapsulation characterized by a range of techniques including electronic absorption, fluorescence emission, NMR and time-resolved EPR spectroscopies, cyclic voltammetry, mass spectrometry, and DFT calculations. While relatively low polarity solvents result in partial charge transfer in the host donor—guest acceptor complex, increasing the polarity of the solvent medium facilitates rare, thermally allowed full electron transfer from the Green Box to fullerene in the ground state. The ensuing charge separated radical ion paired complex is spectroscopically characterized, with thermodynamic reversibility and kinetic stability also demonstrated. Importantly, the Green Box represents a seminal type of C_(60/70) host where electron-rich PDI motifs are utilized as recognition motifs for fullerenes, facilitating novel intermolecular, solvent tunable ground state electronic communication with these guests. The ability to switch between extremes of the charge transfer energy continuum is without precedent in synthetic fullerene-based dyads.
机译:富勒烯的强大电子接受能力使其成为仿生供体-受体系统中无处不在的成分,该系统模拟了自然界光合中心的分子间电子转移过程。利用per二酰亚胺(PDI)作为环状宿主系统中的组分进行富勒烯的非共价识别是前所未有的,部分原因是原型PDI也是电子缺陷的,因此在电子上不利于二联体组装的形成。为了解决这个问题,我们报告了一种新颖的大型大环受体的战略设计和合成,该受体由两个共价键合的富电子双吡咯烷PDI面板组成,由于其颜色而被昵称为“绿色盒子”。通过电子互补原理,绿色盒子对原始富勒烯(C_(60/70))具有很强的识别力,富勒烯客体封装后会发生非共价基态和激发态相互作用,其特征包括电子吸收,荧光等一系列技术发射,NMR和时间分辨EPR光谱,循环伏安法,质谱和DFT计算。极性相对较低的溶剂会导致主体供体-客体受体复合物中的部分电荷转移,而增加溶剂介质的极性则有助于在基态下将稀有的,允许热的全电子从绿盒转移至富勒烯。在光谱上表征随后的电荷分离的自由基离子对配合物,并且还证明了其热力学可逆性和动力学稳定性。重要的是,绿色盒子代表了一种开创性的C_(60/70)宿主,其中富电子的PDI基序被用作富勒烯的识别基序,从而促进了与这些来宾的新型分子间,溶剂可调基态电子通信。在合成的基于富勒烯的二元化合物中,在电荷转移能量连续体的极端之间进行切换的能力尚无先例。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2020年第1期|349-364|共16页
  • 作者单位

    Chemistry Research Laboratory Department of Chemistry University of Oxford Mansfield Road Oxford OX1 3TA United Kingdom;

    Centre for Advanced ESR Inorganic Chemistry Laboratory Department of Chemistry University of Oxford South Parks Road Oxford OX1 3QR United Kingdom;

    Department of Materials University of Oxford Parks Road Oxford OX1 3PH United Kingdom;

    Chemistry Research Laboratory Department of Chemistry University of Oxford Mansfield Road Oxford OX1 3TA United Kingdom Department of Materials University of Oxford Parks Road Oxford OX1 3PH United Kingdom;

    Department of Chemistry CICECO — Aveiro Institute of Materials University of Aveiro Aveiro 3810-193 Portugal;

  • 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);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 05:17:06

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