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镧系和锕系基受阻路易斯酸碱对氢化化学中由共价性驱动的差异

Covalency-Driven Differences in the Hydrogenation Chemistry of Lanthanide- and Actinide-Based Frustrated Lewis Pairs.

作者信息

Brackbill I Joseph, Rajeshkumar Thayalan, Douair Iskander, Maron Laurent, Boreen Michael A, Bergman Robert G, Arnold John

机构信息

Department of Chemistry, University of California, Berkeley, California 94720-1460, United States.

Chemical Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720-1460, United States.

出版信息

J Am Chem Soc. 2024 Aug 7;146(31):21932-21947. doi: 10.1021/jacs.4c06777. Epub 2024 Jul 25.

Abstract

The electronic organization of Frustrated Lewis Pairs (FLPs) allows them to activate strong bonds in mechanisms that are usually free of redox events at the Lewis acidic site. The unique 6d/5f manifold of uranium could serve as an interesting FLP acceptor site, but to date FLP-like catalysis with actinide ions is unknown. In this paper, the catalytic, FLP-like hydrogenation reactivity of trivalent uranium complexes is explored in the presence of base-stabilized silylenes. Comparison to isoelectronic, isostructural lanthanide and thorium complexes lends insight into the electronic factors governing dihydrogen activation. Mechanistic studies of the uranium- and lanthanide-catalyzed hydrogenations are presented, including discussion of likely intermediates. Computational modeling of the f-element complexes, combined with experimental comparison to p-block Lewis acids, elucidates the relevance of steric hindrance to productive reactivity with dihydrogen. Consideration of the complete experimental and theoretical evidence provides a clear picture of the electronic and steric factors governing dihydrogen activation by these FLPs.

摘要

受阻路易斯酸碱对(FLPs)的电子结构使其能够在通常在路易斯酸位点不发生氧化还原事件的机制中激活强化学键。铀独特的6d/5f电子层可作为一个有趣的FLP受体位点,但迄今为止,尚未发现含锕系离子的类FLP催化作用。本文研究了在碱稳定的硅烯存在下三价铀配合物的类FLP催化氢化反应活性。与等电子、同结构的镧系和钍配合物进行比较,有助于深入了解控制氢气活化的电子因素。本文还介绍了铀和镧系催化氢化反应的机理研究,包括对可能中间体的讨论。对f元素配合物的计算建模,结合与p区路易斯酸的实验比较,阐明了空间位阻与氢气有效反应活性的相关性。综合考虑完整的实验和理论证据,清晰地展现了控制这些FLPs活化氢气的电子和空间因素。

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