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s 区硼烷胺:合成、结构、反应性及应用。

s-Block amidoboranes: syntheses, structures, reactivity and applications.

机构信息

Friedrich-Alexander-Universität Erlangen-Nürnberg, Inorganic and Organometallic Chemistry, Egerlandstraße 1, 91058 Erlangen, Germany.

出版信息

Chem Soc Rev. 2016 Feb 21;45(4):1112-28. doi: 10.1039/c5cs00544b. Epub 2015 Nov 30.

Abstract

Metal amidoborane compounds of the alkali- and alkaline earth metals have in recent years found applications in diverse disciplines, notably as hydrogen storage materials, as reagents for the reduction of organic functional groups and as catalysts and intermediates in dehydrocoupling reactions. These functions are connected by the organometallic chemistry of the MNR2BH3 group. This review focusses on central aspects of the s-block amidoborane compounds - their syntheses, structures and reactivity. Well-defined amidoborane complexes of group 2 metals are now available by a variety of solution-phase routes, which has allowed a more detailed analysis of this functional group, which was previously largely confined to solid-state materials chemistry. Structures obtained from X-ray crystallography have begun to provide increased understanding of the fundamental steps of key processes, including amine-borane dehydrocoupling and hydrogen release from primary and secondary amidoboranes. We review structural parameters and reactivity to rationalise the effects of the metal, nitrogen substituents and supporting ligands on catalytic performance and dehydrogenative decomposition routes. Mechanistic features of key processes involving amidoborane compounds as starting materials or intermediates are discussed, alongside emerging applications such as the use of group 1 metal amidoboranes in synthesis. Finally, the future prospects of this vibrant branch of main group chemistry are evaluated.

摘要

近年来,碱金属和碱土金属的金属氨基硼烷化合物在多个领域得到了应用,特别是作为储氢材料、有机官能团还原试剂以及脱氢偶联反应中的催化剂和中间体。这些功能与 MNR2BH3 基团的有机金属化学有关。本综述重点介绍了 s 区氨基硼烷化合物的核心方面——它们的合成、结构和反应性。通过各种溶液相途径,现在可以获得具有明确结构的 2 族金属氨基硼烷配合物,这使得对该官能团进行更详细的分析成为可能,而此前该官能团主要局限于固态材料化学。从 X 射线晶体学获得的结构开始为关键过程的基本步骤提供了更多的理解,包括胺硼烷脱氢偶联和伯仲氨基硼烷的氢释放。我们综述了结构参数和反应性,以合理说明金属、氮取代基和支撑配体对催化性能和脱氢分解途径的影响。讨论了涉及氨基硼烷化合物作为起始材料或中间体的关键过程的反应机理特征,以及该领域在合成中的新兴应用,如 1 族金属氨基硼烷的应用。最后,评估了这一充满活力的主族化学分支的未来前景。

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