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非均相催化剂特有的Pd(II)-(μ-O)-Au(0)结构对C-H键的活化机制

C-H Bond Activation Mechanism by a Pd(II)-(μ-O)-Au(0) Structure Unique to Heterogeneous Catalysts.

作者信息

Takei Daisuke, Yatabe Takafumi, Yabe Tomohiro, Miyazaki Ray, Hasegawa Jun-Ya, Yamaguchi Kazuya

机构信息

Department of Applied Chemistry, School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.

Institute for Catalysis, Hokkaido University, N21 W10 Kita-ku, Sapporo, Hokkaido 001-0021, Japan.

出版信息

JACS Au. 2022 Jan 14;2(2):394-406. doi: 10.1021/jacsau.1c00433. eCollection 2022 Feb 28.

Abstract

We focused on identifying a catalytic active site structure at the atomic level and elucidating the mechanism at the elementary reaction level of liquid-phase organic reactions with a heterogeneous catalyst. In this study, we experimentally and computationally investigated efficient C-H bond activation for the selective aerobic α,β-dehydrogenation of saturated ketones by using a Pd-Au bimetallic nanoparticle catalyst supported on CeO (Pd/Au/CeO) as a case study. Detailed characterization of the catalyst with various observation methods revealed that bimetallic nanoparticles formed on the CeO support with an average size of about 2.5 nm and comprised a Au nanoparticle core and PdO nanospecies dispersed on the core. The formation mechanism of the nanoparticles was clarified through using several CeO-supported controlled catalysts. Activity tests and detailed characterizations demonstrated that the dehydrogenation activity increased with the coordination numbers of Pd-O species in the presence of Au(0) species. Such experimental evidence suggests that a Pd(II)-(μ-O)-Au(0) structure is the true active site for this reaction. Based on density functional theory calculations using a suitable PdOAu cluster model with the Pd(II)-(μ-O)-Au(0) structure, we propose a C-H bond activation mechanism via concerted catalysis in which the Pd atom acts as a Lewis acid and the adjacent μ-oxo species acts as a Brønsted base simultaneously. The calculated results reproduced the experimental results for the selective formation of 2-cyclohexen-1-one from cyclohexanone without forming phenol, the regioselectivity of the reaction, the turnover-limiting step, and the activation energy.

摘要

我们专注于在原子水平上确定催化活性位点结构,并阐明非均相催化剂用于液相有机反应的基元反应水平的机理。在本研究中,我们以负载在CeO上的Pd-Au双金属纳米颗粒催化剂(Pd/Au/CeO)为例,通过实验和计算研究了饱和酮选择性好氧α,β-脱氢反应中高效的C-H键活化。用各种观察方法对催化剂进行详细表征表明,在CeO载体上形成了平均尺寸约为2.5 nm的双金属纳米颗粒,其由Au纳米颗粒核和分散在核上的PdO纳米物种组成。通过使用几种CeO负载的对照催化剂,阐明了纳米颗粒的形成机理。活性测试和详细表征表明,在Au(0)物种存在下,脱氢活性随Pd-O物种的配位数增加而增加。这些实验证据表明,Pd(II)-(μ-O)-Au(0)结构是该反应的真正活性位点。基于使用具有Pd(II)-(μ-O)-Au(0)结构的合适的PdOAu簇模型进行的密度泛函理论计算,我们提出了一种通过协同催化的C-H键活化机理,其中Pd原子同时作为路易斯酸,相邻的μ-氧代物种作为布朗斯特碱。计算结果重现了以环己酮选择性生成2-环己烯-1-酮而不生成苯酚的实验结果、反应的区域选择性、周转限制步骤和活化能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ab7b/8889553/28ce8dd9bcdc/au1c00433_0001.jpg

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