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具有嵌入结构的用于水煤气变换反应的高稳定性铂/二氧化铈催化剂。

Highly Stable Pt/CeO Catalyst with Embedding Structure toward Water-Gas Shift Reaction.

作者信息

Yu Jun, Qin Xuetao, Yang Yusen, Lv Mingxin, Yin Pan, Wang Lei, Ren Zhen, Song Boyu, Li Qiang, Zheng Lirong, Hong Song, Xing Xianran, Ma Ding, Wei Min, Duan Xue

机构信息

State Key Laboratory of Chemical Resource Engineering, Beijing Advanced Innovation Center for Soft Matter Science and Engineering, Beijing University of Chemical Technology, Beijing 100029, P. R. China.

Quzhou Institute for Innovation in Resource Chemical Engineering, Quzhou 324000, P. R. China.

出版信息

J Am Chem Soc. 2024 Jan 10;146(1):1071-1080. doi: 10.1021/jacs.3c12061. Epub 2023 Dec 29.

Abstract

Strong metal-support interaction (SMSI) has been extensively studied in heterogeneous catalysis because of its significance in stabilizing active metals and tuning catalytic performance, but the origin of SMSI is not fully revealed. Herein, by using Pt/CeO as a model catalyst, we report an embedding structure at the interface between Pt and (110) plane of CeO, where Pt clusters (∼1.6 nm) are embedded into the lattice of ceria within 3-4 atomic layers. In contrast, this phenomenon is absent in the CeO(100) support. This unique geometric structure, as an effective motivator, triggers more significant electron transfer from Pt clusters to CeO(110) support accompanied by the formation of interfacial structure (Pt-O-Ce), which plays a crucial role in stabilizing Pt nanoclusters. A comprehensive investigation based on experimental studies and theoretical calculations substantiates that the interfacial sites serve as the intrinsic active center toward water-gas shift reaction (WGSR), featuring a moderate strength CO activation adsorption and largely decreased energy barrier of HO dissociation, accounting for the prominent catalytic activity of Pt/CeO(110) (a reaction rate of 15.76 mol g h and a turnover frequency value of 2.19 s at 250 °C). In addition, the Pt/CeO(110) catalyst shows a prominent durability within a 120 h time-on-stream test, far outperforming the Pt/CeO(100) one, which demonstrates the advantages of this embedding structure for improving catalyst stability.

摘要

强金属-载体相互作用(SMSI)因其在稳定活性金属和调节催化性能方面的重要性,在多相催化中得到了广泛研究,但SMSI的起源尚未完全揭示。在此,我们以Pt/CeO为模型催化剂,报道了Pt与CeO(110)面之间界面处的一种嵌入结构,其中Pt团簇(约1.6纳米)嵌入到氧化铈晶格中3至4个原子层内。相比之下,在CeO(100)载体中不存在这种现象。这种独特的几何结构作为一种有效的激发因素,引发了从Pt团簇到CeO(110)载体更显著的电子转移,并伴随着界面结构(Pt-O-Ce)的形成,这在稳定Pt纳米团簇方面起着关键作用。基于实验研究和理论计算的综合研究证实,界面位点是水煤气变换反应(WGSR)的本征活性中心,具有适度强度的CO活化吸附和大幅降低的HO解离能垒,这解释了Pt/CeO(110)的显著催化活性(在250℃下反应速率为15.76 mol g h,周转频率值为2.19 s)。此外,Pt/CeO(110)催化剂在120小时的连续流动测试中表现出突出的耐久性,远远优于Pt/CeO(100)催化剂,这证明了这种嵌入结构在提高催化剂稳定性方面的优势。

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