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控制超原子中的配体配位球和团簇融合。

Controlling Ligand Coordination Spheres and Cluster Fusion in Superatoms.

机构信息

Department of Chemistry, Columbia University, New York, New York 10027, United States.

出版信息

J Am Chem Soc. 2022 Jan 12;144(1):306-313. doi: 10.1021/jacs.1c09901. Epub 2021 Dec 23.

DOI:10.1021/jacs.1c09901
PMID:34937334
Abstract

We show that reaction pathways from a single superatom motif can be controlled through subtle electronic modification of the outer ligand spheres. Chevrel-type [CoSeL] (L = PR, CO) superatoms are used to form carbene-terminated clusters, the reactivity of which can be influenced through the electronic effects of the surrounding ligands. This carbene provides new routes for ligand substitution chemistry, which is used to selectively install cyanide or pyridine ligands which were previously inaccessible in these cobalt-based clusters. The surrounding ligands also impact the ability of this carbene to create larger fused clusters of the type [CoSeL], providing underlying information for cluster fusion mechanisms. We use this information to develop methods of creating dimeric clusters with functionalized surface ligands with site specificity, putting new ligands in specific positions on this anisotropic core. Finally, adjusting the carbene intermediates can also be used to perturb the geometry of the [CoSe] core itself, as we demonstrate with a multicarbene adduct that displays a substantially anisotropic core. These additional levels of synthetic control could prove instrumental for using superatomic clusters for many applications including catalysis, electronic devices, and creating novel extended structures.

摘要

我们表明,通过对外层配体球的微妙电子修饰,可以控制单个超原子基元的反应途径。使用 Chevrel 型 [CoSeL](L = PR、CO)超原子形成卡宾端接的团簇,其反应性可以通过周围配体的电子效应来影响。这种卡宾提供了配体取代化学的新途径,用于选择性地安装氰化物或吡啶配体,这些配体以前在这些基于钴的团簇中是无法获得的。周围的配体也会影响这种卡宾形成 [CoSeL] 类型的更大融合团簇的能力,为团簇融合机制提供了基础信息。我们利用这些信息开发了具有特定位置官能化表面配体的二聚体簇的合成方法,将新配体置于这种各向异性核的特定位置。最后,调节卡宾中间体也可用于干扰 [CoSe] 核本身的几何形状,正如我们用展示出明显各向异性核的多卡宾加合物所证明的那样。这些额外的合成控制水平可能对使用超原子簇在许多应用中非常有用,包括催化、电子设备和创建新型扩展结构。

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