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Influence of Constitution and Charge on Radical Pairing Interactions in Tris-radical Tricationic Complexes

机译:组成和电荷对三自由基三阳离子配合物中自由基配对相互作用的影响

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摘要

The results of a systematic investigation of trisradical tricationic complexes formed between cydobis-(paraquat-p-phenylene) bisradical dicationic (CBPQT~(2(·+))) rings and a series of 18 dumbbells, containing centrally located 4,4′-bipyridinium radical cationic (BIPY~(·+)) units within oligomethylene chains terminated for the most part by charged 3,5-dimethylpyridinium (PY~+) and/or neutral 3,5-dimethylphenyl (PH) groups, are reported. The complexes were obtained by treating equimolar amounts of the CBPQT~(4+) ring and the dumbbells containing BIPY~(2+) units with zinc dust in acetonitrile solutions. Whereas UV-Vis-NIR spectra revealed absorption bands centered on ca. 1100 nm with quite different intensities for the 1:1 complexes depending on the constitutions and charges on the dumbbells, titration experiments showed that the association constants (K_a) for complex formation vary over a wide range, from 800 M~(-1) for the weakest to 180 000 M~(-1) for the strongest While Coulombic repulsions emanating from PY~+ groups located at the ends of some of the dumbbells undoubtedly contribute to the destabilization of the trisradical tricationic complexes, solid-state superstructures support the contention that those dumbbells with neutral PH groups at the ends of flexible and appropriately constituted links to the BIPY~(·+) units stand to gain some additional stabilization from C-H…π interactions between the CBPQT~(2(·+)) rings and the PH termini on the dumbbells. The findings reported in this Article demonstrate how structural changes implemented remotely from the BIPY~(·+) units influence their non-covalent bonding interactions with CBPQT~(2(·+)) rings. Different secondary effects (Coulombic repulsions versus C-H…π interactions) are uncovered, and their contributions to both binding strengths associated with trisradical interactions and the kinetics of associations and dissociations are discussed at some length, supported by extensive DFT calculations at the M06-D3 level. A fundamental understanding of molecular recognition in radical complexes has relevance when it comes to the design and synthesis of non-equilibrium systems.
机译:系统研究三氰基-(百草枯-对-亚苯基)双自由基双环(CBPQT〜(2(·+)))环与一系列18个哑铃的形成的三自由基三阳离子配合物,这些哑铃包含位于中心的4,4'-据报道,低聚亚甲基链内的双吡啶鎓自由基阳离子(BIPY〜(·+))单元大部分被带电荷的3,5-二甲基吡啶鎓(PY〜+)和/或中性3,5-二甲基苯基(PH)基团封端。通过在乙腈溶液中用锌粉处理等摩尔量的CBPQT〜(4+)环和含有BIPY〜(2+)单元的哑铃,可以得到配合物。而UV-Vis-NIR光谱显示吸收带集中在大约1100 nm对1:1配合物的强度有很大不同,这取决于哑铃的结构和电荷,滴定实验表明,配合物形成的缔合常数(K_a)在很宽的范围内变化,从800 M〜(-1)最弱的最强至180000 M〜(-1)最强,而位于某些哑铃末端的PY〜+基团产生的库仑排斥无疑助长了三基三阳离子配合物的不稳定,固态上层结构支持了这一争论。那些在BIPY〜(·+)单元的柔性且适当构成的链结末端带有中性PH基团的哑铃,将从CBPQT〜(2(·+))环与CBPQT〜(2(·+))环之间的CH…π相互作用中获得一些额外的稳定性。哑铃上的PH总站。本文报道的发现表明,从BIPY〜(·+)单元远程进行的结构变化如何影响其与CBPQT〜(2(·+))环的非共价键相互作用。尚未发现不同的次级影响(库仑排斥与CH…π相互作用),并在一定程度上讨论了它们对与三价相互作用相关的结合强度以及缔合和解离动力学的贡献,并在M06-D3级别进行了广泛的DFT计算。当涉及非平衡体系的设计和合成时,对自由基络合物中分子识别的基本理解具有重要意义。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2016年第26期|8288-8300|共13页
  • 作者单位

    Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States;

    Materials and Process Simulation Center (MC 139-74), California Institute of Technology, Pasadena, California 91125, United States;

    Materials and Process Simulation Center (MC 139-74), California Institute of Technology, Pasadena, California 91125, United States;

    Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States,Argonne-Northwestern Solar Energy Research (ANSER) Center, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States;

    Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States;

    Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States,Department of Chemistry, Durham University, South Road, Durham DH1 3LE, United Kingdom;

    Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States,Department of Chemical Sciences, University of Padova, Via Marzolo 1, Padova 35131, Italy;

    Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States,Department of Chemistry, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, Massachusetts 02139, United States;

    Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States,Department of Molecular Biology and Center for Computational and Integrative Biology, Massachusetts General Hospital, Howard Hughes Medical Institute, 185 Cambridge Street, Boston, Massachusetts 02114, United States,Earth-Life Science Institute, Tokyo Institute of Technology, 2-12-1-IE-1 Ookayama, Meguro-ku, Tokyo 152-8550, Japan;

    Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States,Argonne-Northwestern Solar Energy Research (ANSER) Center, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States;

    Materials and Process Simulation Center (MC 139-74), California Institute of Technology, Pasadena, California 91125, United States;

    Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States;

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  • 入库时间 2022-08-18 03:08:50

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