钴PN5P钳形配合物催化硅乙炔氢硼化的机理研究:催化循环对反应效率的影响

IF 2.5 3区 化学 Q2 CHEMISTRY, INORGANIC & NUCLEAR
J. Pablo Martínez*, Dariusz Lewandowski, Grzegorz Hreczycho* and Bartosz Trzaskowski*, 
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引用次数: 0

摘要

采用密度泛函理论(DFT)研究了钴配合物与PN5P三嗪螯合物催化硅乙炔与蒎烷硼化氢的反应机理。计算结果揭示了催化剂引发和产物形成的多种反应途径。钴配合物通过氢化物转移从pinacolborane活化,这一过程被实验核磁共振分析证实。此外,DFT结果表明催化剂的活化涉及二聚化和析氢。与一般提出的钴-硼基中间体相反,活性催化剂被鉴定为一氢化钴。根据动力学和热力学描述,在扩散阶段,一氢化钴优先与硅乙炔而不是与蒎烯硼烷反应,从而阻碍了硼酸钴的形成。在这个反应中,炔的高反应活性归因于它们的Brønsted酸性。导致硼氢化产物的途径包括金属氢化与析氢相竞争,析氢之后是硼化与硼烷、氢烷基化,最后是还原消除或炔插入。我们的研究结果还表明,通过在硅乙炔衬底中加入吸电子基团可以降低过渡态能量。提高产品收率的研究涉及硅基取代基,以及在实验室条件下制定的具有更广泛适用性的方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanistic Study of Silylacetylene Hydroboration Catalyzed by a Cobalt PN5P Pincer Complex: Catalytic Cycles Altering the Reaction Efficiency

The reaction mechanisms of the hydroboration of silylacetylene with pinacolborane catalyzed by a cobalt complex with a PN5P triazine pincer have been studied using density functional-theory (DFT). The calculations reveal multiple reaction routes for catalyst initiation and product formation. The cobalt complex undergoes activation via hydride transfer from pinacolborane, a process confirmed by experimental NMR analysis. Additionally, DFT results indicate that catalyst activation involves dimerization and hydrogen evolution. In contrast to the generally proposed cobalt-boryl intermediates, the active catalyst is identified as a cobalt monohydride species. During the propagation phase, cobalt monohydride preferentially reacts with silylacetylenes rather than pinacolborane, as indicated by kinetic and thermodynamic descriptors, thus impeding the formation of cobalt boryl species. This higher reactivity of alkynes in this reaction is attributed to their Brønsted acidity. The pathways leading to the hydroborated product involve hydrometallation competing with hydrogen evolution, with the latter being followed by borylation with pinacolborane, hydroalkylation, and eventually either reductive elimination or alkyne insertion. Our findings also indicate that transition state energies can be reduced by incorporating electron-withdrawing groups into the silylacetylene substrate. Enhancements in product yield are examined in relation to the silyl substituents, as well as a protocol with broader applicability, formulated under laboratory conditions.

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来源期刊
Organometallics
Organometallics 化学-无机化学与核化学
CiteScore
5.60
自引率
7.10%
发文量
382
审稿时长
1.7 months
期刊介绍: Organometallics is the flagship journal of organometallic chemistry and records progress in one of the most active fields of science, bridging organic and inorganic chemistry. The journal publishes Articles, Communications, Reviews, and Tutorials (instructional overviews) that depict research on the synthesis, structure, bonding, chemical reactivity, and reaction mechanisms for a variety of applications, including catalyst design and catalytic processes; main-group, transition-metal, and lanthanide and actinide metal chemistry; synthetic aspects of polymer science and materials science; and bioorganometallic chemistry.
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