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控制一系列钴紫精配合物中自由基配体的分子内和分子间电子耦合

Controlling Intramolecular and Intermolecular Electronic Coupling of Radical Ligands in a Series of Cobaltoviologen Complexes.

作者信息

Kessler Brice J O, Mansoor Iram F, Wozniak Derek I, Emge Thomas J, Lipke Mark C

机构信息

Department of Chemistry and Chemical Biology, Rutgers, The State University of New Jersey, 123 Bevier Road, Piscataway, New Jersey 08854, United States.

出版信息

J Am Chem Soc. 2023 Jul 26;145(29):15924-15935. doi: 10.1021/jacs.3c03725. Epub 2023 Jul 17.

DOI:10.1021/jacs.3c03725
PMID:37460450
Abstract

Controlling electronic coupling between multiple redox sites is of interest for tuning the electronic properties of molecules and materials. While classic mixed-valence (MV) systems are highly tunable, e.g., via the organic bridges connecting the redox sites, metal-bridged MV systems are difficult to control because the electronics of the metal cannot usually be altered independently of redox-active moieties embedded in its ligands. Herein, this limitation was overcome by varying the donor strengths of ancillary ligands in a series of cobalt complexes without directly perturbing the electronics of viologen-like redox sites bridged by the cobalt ions. The cobaltoviologens feature four 4-X-pyridyl donor groups (X = COMe, Cl, H, Me, OMe, NMe) that provide gradual electronic tuning of the bridging Co centers, while a related complex [ with NHC donors supports exclusively Co states even upon reduction of the viologen units. Electrochemistry and IVCT band analysis indicate that the MV states of these complexes have electronic structures ranging from fully localized (; Robin-Day Class I) to fully delocalized ([; Class III) descriptions, demonstrating unprecedented control over electronic coupling without changing the identity of the redox sites or bridging metal. Additionally, single-crystal XRD characterization of the homovalent complexes and revealed radical-pairing interactions between the viologen ligands of adjacent complexes, representing a type of through-space electronic coupling commonly observed for organic viologen radicals but never before seen in metalloviologens. The extended solid-state packing of these complexes produces 3D networks of radical π-stacking interactions that impart unexpected mechanical flexibility to these crystals.

摘要

控制多个氧化还原位点之间的电子耦合对于调节分子和材料的电子性质具有重要意义。虽然经典的混合价(MV)体系具有高度的可调性,例如通过连接氧化还原位点的有机桥连,但金属桥连的MV体系却难以控制,因为金属的电子性质通常不能独立于嵌入其配体中的氧化还原活性部分而改变。在此,通过改变一系列钴配合物中辅助配体的给体强度克服了这一限制,而不会直接扰动由钴离子桥连的类紫精氧化还原位点的电子性质。钴紫精具有四个4-X-吡啶基供体基团(X = COMe、Cl、H、Me、OMe、NMe),它们为桥连的Co中心提供了逐步的电子调节,而一个相关的具有NHC供体的配合物即使在紫精单元还原时也仅支持Co态。电化学和IVCT能带分析表明,这些配合物的MV态具有从完全局域化(; Robin-Day I类)到完全离域化([; III类)描述的电子结构,展示了在不改变氧化还原位点或桥连金属身份的情况下对电子耦合前所未有的控制。此外,同价配合物和的单晶XRD表征揭示了相邻配合物的紫精配体之间的自由基配对相互作用,这代表了一种在有机紫精自由基中常见但在金属紫精中从未见过的空间电子耦合类型。这些配合物的扩展固态堆积产生了自由基π-堆积相互作用的三维网络,赋予这些晶体意想不到的机械柔韧性。

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