Suppr超能文献

双西格玛键二氢和硼烷钌配合物:键合性质、催化应用和可逆氢释放。

Bis sigma-bond dihydrogen and borane ruthenium complexes: bonding nature, catalytic applications, and reversible hydrogen release.

机构信息

CNRS, Laboratoire de Chimie de Coordination, 205 route de Narbonne, F-31077 Toulouse, France.

出版信息

Acc Chem Res. 2009 Oct 20;42(10):1640-9. doi: 10.1021/ar900091a.

Abstract

Hydrogen, the simplest element in the periodic table, plays a tremendous role in organic and inorganic chemistry. For years, it was inconceivable that dihydrogen could be bound to a metal center without breaking the H-H bond. Thus, oxidative addition of H(2) was universally recognized as a key elementary step in hydrogenation processes. In 1984, Kubas and co-workers reported the first example of a complex in which dihydrogen was coordinated to a metal center without breaking of the H-H bond. This opened a new area in coordination chemistry: sigma-complexes were born, complementing the well-known Werner-type family of complexes. Since then, hundreds of stable dihydrogen complexes have been isolated, and their properties have been investigated in detail. By comparison, very little information is available for the analogous class of sigma-borane complexes, in which sigma-H-B bonds are complexed to a metal (in the manner of H-H bonds in sigma-dihydrogen complexes). Since the first example published in 1996 by Hartwig and co-workers, very few sigma-borane complexes have been isolated. Scientists have maintained a continuous interest in catalytic hydrogenation reactions. Almost a century ago, in 1912, Paul Sabatier, the father of the hydrogenation process, received the Nobel prize, and the selection of Noyori and Knowles in 2001 for their studies on enantioselective catalyzed hydrogenations amply demonstrates the ongoing importance of the field. Moreover, during the past decade, dihydrogen has attracted considerable attention as a possible "fuel of the future". This endeavor has furthered interest in sigma-borane complexes, as more and more evidence links their chemistry to that of amine-borane derivatives. Indeed, ammonia-borane (NH(3)BH(3)) is attracting significant interest for hydrogen storage applications. One of the main limitations is the lack of reversibility associated with the production of dehydrogenated (BNH)(x) materials. Of major importance will be a better understanding of the coordination of H(2) to a metal center, and more generally of the coordination of H-E bonds (E = B, C), which are likely to play a critical role in the reversible dehydrogenation process. In this Account, we review our recent results in the field of dihydrogen and borane activation, with a specific focus on the problem of reversible dehydrogenation pathways. We concentrate on the chemistry of ruthenium complexes incorporating two sigma-ligands: either two dihydrogen or two sigma-B-H bonds. We describe our synthetic strategies to prepare such unusual structures. Their characterization is discussed in detail, highlighting the importance of an experimental and theoretical approach (NMR, structural, and theoretical studies). Some catalytic applications are discussed and put into context, and their reactivity toward reversible hydrogen release is detailed.

摘要

氢是元素周期表中最简单的元素,在有机和无机化学中起着巨大的作用。多年来,人们一直认为双氢不可能在不打破 H-H 键的情况下与金属中心结合。因此,H(2)的氧化加成被普遍认为是氢化过程中的关键基本步骤。1984 年,库巴斯和同事们报道了第一个双氢配位到金属中心而不打破 H-H 键的配合物的例子。这开辟了配位化学的一个新领域:西格玛配合物诞生了,与著名的 Werner 型配合物家族相得益彰。从那时起,已经分离出了数百种稳定的双氢配合物,并对其性质进行了详细研究。相比之下,关于类似的 sigma-硼烷配合物的信息很少,其中 sigma-H-B 键与金属配位(类似于 sigma-二氢配合物中的 H-H 键)。自 1996 年哈特维希和同事们首次发表以来,仅分离出极少数 sigma-硼烷配合物。科学家们一直对催化氢化反应保持着浓厚的兴趣。几乎一个世纪前,即 1912 年,氢化过程的奠基人保罗·萨巴蒂埃获得了诺贝尔奖,2001 年诺雷尔和诺尔斯因在手性催化氢化方面的研究获得诺贝尔奖,充分证明了该领域的持续重要性。此外,在过去的十年中,氢气作为一种可能的“未来燃料”引起了相当大的关注。这一努力进一步推动了 sigma-硼烷配合物的研究,因为越来越多的证据将其化学性质与胺硼烷衍生物的化学性质联系起来。事实上,氨硼烷(NH(3)BH(3))因其在储氢方面的应用而受到广泛关注。主要的限制之一是与脱氢(BNH)(x)材料的产生相关的不可逆性。更重要的是,更好地理解 H(2)与金属中心的配位,更一般地理解 H-E 键(E=B,C)的配位,这可能在可逆脱氢过程中发挥关键作用。在本报告中,我们综述了我们在双氢和硼烷活化领域的最新研究结果,特别关注可逆脱氢途径的问题。我们专注于含有两个 sigma-配体的钌配合物的化学:要么是两个双氢,要么是两个 sigma-B-H 键。我们描述了我们制备这种不寻常结构的合成策略。详细讨论了它们的表征,强调了实验和理论方法(NMR、结构和理论研究)的重要性。讨论了一些催化应用,并将其置于上下文中,详细描述了它们对可逆氢释放的反应性。

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验