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负载型金纳米颗粒催化剂上的氢氧化:金属-载体界面处异裂氢活化的证据。

H Oxidation over Supported Au Nanoparticle Catalysts: Evidence for Heterolytic H Activation at the Metal-Support Interface.

作者信息

Whittaker Todd, Kumar K B Sravan, Peterson Christine, Pollock Meagan N, Grabow Lars C, Chandler Bert D

机构信息

Department of Chemistry , Trinity University , San Antonio , Texas 78212-7200 , United States.

Department of Chemical and Biomolecular Engineering , University of Houston , Houston , Texas 77204-4004 , United States.

出版信息

J Am Chem Soc. 2018 Dec 5;140(48):16469-16487. doi: 10.1021/jacs.8b04991. Epub 2018 Nov 19.

Abstract

Water adsorbed at the metal-support interface (MSI) plays an important role in multiple reactions. Due to its importance in CO preferential oxidation (PrOx), we examined H oxidation kinetics in the presence of water over Au/TiO and Au/AlO catalysts, reaching the following mechanistic conclusions: (i) O activation follows a similar mechanism to that proposed in CO oxidation catalysis; (ii) weakly adsorbed HO is a strong reaction inhibitor; (iii) fast H activation occurs at the MSI, and (iv) H activation kinetics are inconsistent with traditional dissociative H chemisorption on metals. Density functional theory (DFT) calculations using a supported Au nanorod model suggest H activation proceeds through a heterolytic dissociation mechanism, resulting in a formal hydride residing on the Au and a proton bound to a surface TiOH group. This potential mechanism was supported by infrared spectroscopy experiments during H adsorption on a deuterated Au/TiO surface, which showed rapid H-D scrambling with surface hydroxyl groups. DFT calculations suggest that the reaction proceeds largely through proton-mediated pathways and that typical Brønsted-Evans Polanyi behavior is broken by introducing weak acid/base sites at the MSI. The kinetics data were successfully reinterpreted in the context of the heterolytic H activation mechanism, tying together the experimental and computational evidence and rationalizing the observed inhibition by physiorbed water on the support as blocking the MSI sites required for heterolytic H activation. In addition to providing evidence for this unusual H activation mechanism, these results offer additional insight into why water dramatically improves CO PrOx catalysis over Au.

摘要

吸附在金属-载体界面(MSI)的水在多种反应中起着重要作用。由于其在CO优先氧化(PrOx)中的重要性,我们研究了在水存在下Au/TiO和Au/AlO催化剂上的H氧化动力学,得出以下机理结论:(i)O活化遵循与CO氧化催化中提出的类似机理;(ii)弱吸附的HO是一种强反应抑制剂;(iii)快速的H活化发生在MSI处,并且(iv)H活化动力学与传统的金属上离解性H化学吸附不一致。使用负载型Au纳米棒模型的密度泛函理论(DFT)计算表明,H活化通过异裂解离机理进行,导致一个形式上的氢化物驻留在Au上,一个质子与表面TiOH基团结合。在氘代Au/TiO表面上H吸附期间的红外光谱实验支持了这种潜在机理,该实验表明H-D与表面羟基快速发生交换。DFT计算表明,反应主要通过质子介导的途径进行,并且通过在MSI处引入弱酸/碱位点打破了典型的布朗斯特-埃文斯-波拉尼行为。动力学数据在异裂H活化机理的背景下得到了成功重新解释,将实验和计算证据联系在一起,并合理解释了观察到的物理吸附在载体上的水对异裂H活化所需的MSI位点的阻断所产生的抑制作用。除了为这种不寻常的H活化机理提供证据外,这些结果还提供了关于水为何能显著改善Au上CO PrOx催化作用的额外见解。

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