稀土金属在杂双金属Ni-Y双功能催化炔烃半氢化反应中的作用

IF 13.1 1区 化学 Q1 CHEMISTRY, PHYSICAL
Peifeng Su, Huayu Liang, Yinwu Li* and Zhuofeng Ke*, 
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引用次数: 0

摘要

由于稀土金属的独特性质,稀土催化剂在加氢和相关转化中表现出独特的催化性能。在典型的稀土催化体系中,已经研究了与配体相关的作用和功能模式。近年来,杂双金属催化体系出现了高效氢化和相关转化。在这些体系中,过渡金属(TM)-稀土组合的杂双金属催化剂整合了TM催化和RE催化的特性,表现出TM-RE双功能效应,具有显著的活性和选择性。然而,稀土金属在TM-RE双功能催化中的作用尚不清楚。本理论研究以Ni-Y体系为研究案例,旨在阐明稀土中心在TM-RE双官能团催化炔烃半加氢反应中的重要作用。结果表明,由于Y中心的大尺寸和配位能力,Y中心可以发生动态配位,接受配体的膦基结合。磷化氢基团与大尺寸RE中心的动态配位有助于Ni中心释放空位点进行底物笼内结合,并减少对Ni中心的空间效应。同时,Lewis酸性RE中心可以稳定桥接氢化物,这对H2的活化和加氢至关重要。TM-RE双官能团效应促进了反应。在H2活化阶段,由于钇对镍氢化物的稳定作用,更倾向于表面途径。在半氢化阶段初始氢化物插入过程中,维持了Ni-H-Y桥接结构,这对反应至关重要。此外,使用活性更强的末端氢化物使得末端氢化物途径成为一种更可信的机制。得益于钇能够接受磷化氢基团的动态配位,从而释放空间位阻,同时稳定桥接氢化物,(Z)/(E)-异构化可以通过h2辅助的Ni-Y双功能途径以相对较低的能垒实现(E)-选择性。由于RE-桥接氢化物的稳定作用,中间体的热力学性质与RE金属中心的大小密切相关,从而影响活性和(Z)/(E)-选择性。这些结果强调了稀土中心在TM-RE双功能催化中的重要作用,为未来设计有效的TM-RE双功能催化剂提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Insight into Roles of Rare-Earth Metals in Heterobimetallic Ni–Y Bifunctional Catalysis for Alkyne Semihydrogenation

Insight into Roles of Rare-Earth Metals in Heterobimetallic Ni–Y Bifunctional Catalysis for Alkyne Semihydrogenation

Due to the unique properties of rare-earth (RE) metals, RE catalysts demonstrate distinctive catalytic performance in hydrogenation and related transformations. In typical RE catalytic systems, the roles and function modes have been studied and are relevant to ligands. In recent years, heterobimetallic catalytic systems have emerged for efficient hydrogenation and related transformations. Among these systems, heterobimetallic catalysts with transition metal (TM)-RE combinations integrate the characteristics of TM catalysis and RE catalysis, exhibiting a TM-RE bifunctional effect with remarkable activity and selectivity. However, the roles of RE metals in TM-RE bifunctional catalysis remain ambiguous. This theoretical study takes the Ni–Y system as a study case, aiming to elucidate the significant roles of the RE center in the TM-RE bifunctional effect on catalytic alkyne semihydrogenation. The results suggest that dynamic coordination can occur at the Y center due to its large size and coordination ability, which accepts the binding of phosphine groups of the ligand. The dynamic coordination of phosphine groups to the large-size RE center assists the Ni center in releasing vacant sites for substrate in-cage binding and reduces the steric effect on the Ni center. Meanwhile, the Lewis acidic RE center can stabilize the bridging hydride, which is crucial for H2 activation and hydrogenation. The TM-RE bifunctional effect promotes the reaction. During the H2 activation stage, due to the stabilization of nickel hydrides by yttrium, the fac-pathway is more favored. The Ni–H–Y bridging structure is maintained during the initial hydride insertion in the semihydrogenation stage, which is crucial for the reaction. Additionally, the use of the more active terminal hydride makes the terminal hydride pathway a more plausible mechanism. Benefiting from the capability of yttrium to accept the dynamic coordination of phosphine groups, thereby releasing steric hindrance and stabilizing the bridging hydride concurrently, (Z)/(E)-isomerization can proceed to achieve (E)-selectivity through the H2-assisted Ni–Y bifunctional pathway with a relatively low energy barrier. Owing to the RE-bridging hydride stabilization effect, the thermodynamic properties of intermediates are closely related to the size of the RE metal center, thereby influencing the activity and the (Z)/(E)-selectivity. These results underscore the important roles of the RE center in TM-RE bifunctional catalysis, offering valuable insights into the future design of effective bifunctional TM-RE catalysts.

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来源期刊
ACS Catalysis
ACS Catalysis CHEMISTRY, PHYSICAL-
CiteScore
20.80
自引率
6.20%
发文量
1253
审稿时长
1.5 months
期刊介绍: ACS Catalysis is an esteemed journal that publishes original research in the fields of heterogeneous catalysis, molecular catalysis, and biocatalysis. It offers broad coverage across diverse areas such as life sciences, organometallics and synthesis, photochemistry and electrochemistry, drug discovery and synthesis, materials science, environmental protection, polymer discovery and synthesis, and energy and fuels. The scope of the journal is to showcase innovative work in various aspects of catalysis. This includes new reactions and novel synthetic approaches utilizing known catalysts, the discovery or modification of new catalysts, elucidation of catalytic mechanisms through cutting-edge investigations, practical enhancements of existing processes, as well as conceptual advances in the field. Contributions to ACS Catalysis can encompass both experimental and theoretical research focused on catalytic molecules, macromolecules, and materials that exhibit catalytic turnover.
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