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通过调变催化剂的 Pd 分散度和表面性质,实现高活性 Pd/CeO2 用于烯烃加氢。

Towards highly active Pd/CeO for alkene hydrogenation by tuning Pd dispersion and surface properties of the catalysts.

机构信息

Frontier Institute of Science and Technology and State Key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, Xi'an, 710049, China.

出版信息

Nanoscale. 2017 Mar 2;9(9):3140-3149. doi: 10.1039/c6nr09297g.

Abstract

Extensive applications of noble metals as heterogeneous catalysts are limited by their global reserve scarcity and exorbitant price. Identifying the intrinsic active nature of a catalyst benefits the designing of catalysts with trace amounts of noble metals; these catalysts display better or comparable overall catalytic efficiency than their heavily loaded counterparts. Herein, systematic studies on Pd dispersion and surface properties of a series of Pd/CeO catalysts for styrene hydrogenation showed that high Pd dispersion and surface abundant defects of the catalysts are essential to realize superior activity. Highly dispersed subnanometric Pd clusters on porous nanorods of ceria with a large surface Ce fraction of 27.4%, high Pd dispersion of 73.6%, and low Pd loading of 0.081 wt% delivered a very large turnover frequency of 103 233 h based on each exposed Pd atom for styrene hydrogenation at 1.0 MPa H and 30 °C. Experimental data, kinetic analysis, and density functional theory calculations revealed that the highly dispersed Pd shows a low affinity for styrene and provides more exposed Pd sites for hydrogen activation. The surface abundant defects (oxygen vacancy) of Pd/CeO catalysts can enrich the electron density of Pd, improve its capability for H dissociation and lower the affinity of styrene for Pd.

摘要

贵金属作为多相催化剂的广泛应用受到其全球储量稀缺和价格高昂的限制。确定催化剂的内在活性性质有利于设计含有痕量贵金属的催化剂;这些催化剂的整体催化效率优于其高负载量的对应物。在此,我们对一系列 Pd/CeO 催化剂用于苯乙烯加氢的 Pd 分散和表面性质进行了系统研究,结果表明,高分散的 Pd 纳米簇和丰富的表面缺陷是实现高活性的关键。在具有 27.4%高表面 Ce 分数、73.6%高 Pd 分散度和低负载量 0.081wt%的多孔纳米棒 CeO 上,高度分散的亚纳米 Pd 簇可以实现非常高的苯乙烯加氢 turnover 频率,在 1.0 MPa H 和 30°C 下,每个暴露的 Pd 原子的频率为 103233 h。实验数据、动力学分析和密度泛函理论计算表明,高度分散的 Pd 对苯乙烯的亲和力较低,并提供了更多的暴露 Pd 位点用于氢气活化。Pd/CeO 催化剂表面丰富的缺陷(氧空位)可以增加 Pd 的电子密度,提高其 H 解离能力,并降低苯乙烯对 Pd 的亲和力。

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