On the mechanisms of ethane dehydrogenation on silica-supported mononuclear Fe†

IF 4.4 3区 化学 Q2 CHEMISTRY, PHYSICAL
Sakshi Satyanand, Sanjana Srinivas, Dionisios G. Vlachos and Stavros Caratzoulas
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Abstract

With the increasing interest in developing catalytic materials based on atomically dispersed transition metals on heterogeneous supports, it is necessary to have an atomic-level understanding of the factors that impact their structural and electronic properties and, ultimately, their reactivity. In this contribution, we address and elucidate with electronic structure calculations open questions related to the ethane dehydrogenation mechanism on silica-supported mononuclear Fe(II) and Fe(III) sites. Contrary to prior hypotheses, we determine that the σ-metathesis on Fe(II) sites is an unlikely dehydrogenation mechanism. On tricoordinate and tetracoordinate Fe(II)@SiO2, the reaction proceeds via heterolytic C–H bond activation and β-hydride elimination facilitated by spin-crossing. Atomically dispersed Fe(III) grafted on SiO2 exhibits a more complex behavior as it seems to be undergoing autoreduction and we propose a new redox ethane dehydrogenation mechanism which, remarkably, is energetically competitive with the heterolytic C–H activation mechanism previously identified for other transition metals.

Abstract Image

二氧化硅负载单核铁†上乙烷脱氢机理的研究
随着人们对基于非均相载体上原子分散过渡金属的催化材料的开发越来越感兴趣,有必要从原子水平上了解影响其结构和电子性质以及最终影响其反应性的因素。在这篇文章中,我们用电子结构计算解决和阐明了与二氧化硅支撑的单核Fe(II)和Fe(III)位点上乙烷脱氢机制有关的开放性问题。与先前的假设相反,我们确定Fe(II)位点上的σ-复分解是一种不太可能的脱氢机制。在三配位和四配位的Fe(II)@SiO2上,反应通过C-H键的异裂活化和自旋交叉促进β-氢化物的消除进行。原子分散的Fe(III)接枝在SiO2上表现出更复杂的行为,因为它似乎正在进行自还原。我们提出了一种新的氧化还原乙烷脱氢机制,值得注意的是,它在能量上与先前确定的其他过渡金属的异裂解C-H活化机制竞争。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Catalysis Science & Technology
Catalysis Science & Technology CHEMISTRY, PHYSICAL-
CiteScore
8.70
自引率
6.00%
发文量
587
审稿时长
1.5 months
期刊介绍: A multidisciplinary journal focusing on cutting edge research across all fundamental science and technological aspects of catalysis. Editor-in-chief: Bert Weckhuysen Impact factor: 5.0 Time to first decision (peer reviewed only): 31 days
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