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环状(烷基)(氨基)卡宾(CAACs):兴起的稳定卡宾。

Cyclic (alkyl)(amino)carbenes (CAACs): stable carbenes on the rise.

机构信息

UCSD-CNRS Joint Research Chemistry Laboratory (UMI 3555), Department of Chemistry and Biochemistry, University of California, San Diego , La Jolla, California 92093-0343, United States.

出版信息

Acc Chem Res. 2015 Feb 17;48(2):256-66. doi: 10.1021/ar5003494. Epub 2014 Dec 17.

Abstract

CONSPECTUS

Carbenes are compounds that feature a divalent carbon atom with only six electrons in its valence shell. In the singlet state, they possess a lone pair of electrons and a vacant orbital and therefore exhibit Lewis acidic and Lewis basic properties, which explains their very high reactivity. Following the preparation by our group in 1988 of the first representative, a variety of stable carbenes are now available, the most popular being the cyclic diaminocarbenes. In this Account, we discuss another class of stable cyclic carbenes, namely, cyclic (alkyl)(amino)carbenes (CAACs), in which one of the electronegative and π-donor amino substituents of diaminocarbenes is replaced by a σ-donating but not π-donating alkyl group. As a consequence, CAACs are more nucleophilic (σ-donating) but also more electrophilic (π-accepting) than diaminocarbenes. Additionally, the presence of a quaternary carbon in the position α to the carbene center provides steric environments that differentiate CAACs dramatically from all other ligands. We show that the peculiar electronic and steric properties of CAACs allow for the stabilization of unusual diamagnetic and paramagnetic main group element species. As examples, we describe the preparation of room temperature stable phosphorus derivatives in which the heteroatom is in the zero oxidation state, nucleophilic boron compounds, and phosphorus-, antimony-, boron-, silicon-, and even carbon-centered neutral and cationic radicals. CAACs are also excellent ligands for transition metal complexes. The most recent application is their use for the stabilization of paramagnetic complexes, in which the metal is often in a formal zero oxidation state. Indeed, bis(CAAC)M complexes in which the metal is gold, copper, cobalt, iron, nickel, manganese, and zinc have been isolated. Depending on the metal, the majority of spin density can reside either on the metal or on the carbene carbons and the nitrogen atoms of the CAAC ligand. In contrast to diaminocarbenes, the higher basicity of CAACs makes them poor leaving groups, and thus they cannot be used for classical organocatalysis. However, because of their superior electrophilicity and smaller singlet-triplet gap, CAACs can activate small molecules at room temperature, such as CO, H2, and P4, as well as enthalpically strong bonds, such as B-H, Si-H, N-H, and P-H. Lastly, excellent results have been obtained in palladium, ruthenium, and gold catalysis. CAAC-metal complexes are extremely thermally robust, which allows for their utilization in harsh conditions. This property has been used to perform a variety of gold-catalyzed reactions in the presence of basic amines, including ammonia and hydrazine, which usually deactivate catalysts.

摘要

概观

卡宾是一种具有二价碳原子的化合物,其价层只有六个电子。在单重态下,它们具有孤对电子和空轨道,因此表现出路易斯酸和路易斯碱性质,这解释了它们的高反应性。在我们小组于 1988 年首次制备出代表性物质后,现在已经有多种稳定的卡宾可供使用,其中最受欢迎的是环状二氨基卡宾。在本综述中,我们讨论了另一类稳定的环状卡宾,即环状(烷基)(氨基)卡宾(CAAC),其中二氨基卡宾的一个带负电荷和π-供体的氨基取代基被一个给电子但不是π-供体的烷基取代。因此,CAAC 比二氨基卡宾更亲核(给电子),但也更亲电(π-接受)。此外,卡宾中心α位的季碳原子提供了空间环境,使 CAAC 与所有其他配体明显不同。我们表明,CAAC 的特殊电子和空间性质允许稳定不寻常的抗磁性和顺磁性主族元素物质。例如,我们描述了制备室温稳定的磷衍生物的方法,其中杂原子处于零氧化态,亲核硼化合物,以及磷、锑、硼、硅,甚至碳中心的中性和阳离子自由基。CAAC 也是过渡金属配合物的优良配体。最近的应用是它们用于稳定顺磁性配合物,其中金属通常处于形式零氧化态。事实上,已经分离出了双(CAAC)M 配合物,其中金属是金、铜、钴、铁、镍、锰和锌。根据金属的不同,大部分自旋密度可以位于金属或 CAAC 配合物的碳和氮原子上。与二氨基卡宾不同,CAAC 的更高碱性使其成为较差的离去基团,因此不能用于经典的有机催化。然而,由于其更高的亲电性和更小的单重态-三重态能隙,CAAC 可以在室温下激活小分子,如 CO、H2 和 P4,以及焓强键,如 B-H、Si-H、N-H 和 P-H。最后,在钯、钌和金催化中取得了优异的结果。CAAC-金属配合物具有极强的热稳定性,这使其能够在恶劣条件下使用。这种性质已被用于在碱性伯胺(包括氨和肼)存在下进行各种金催化反应,而这些伯胺通常会使催化剂失活。

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