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Enhanced Stability of Pd/ZnO Catalyst for CO Oxidative Coupling to Dimethyl Oxalate: Effect of Mg2+ Doping

机译:用于CO氧化偶联至草酸二甲酯的Pd / ZnO催化剂的稳定性增强:Mg2 +掺杂的影响

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摘要

The catalytic performances of supported Pd nanoparticles (NPs) are strongly dependent on the support materials for CO oxidative coupling to dimethyl oxalate (DMO). Herein, hierarchical flower-like ZnO microspheres composed of porous nanosheets are employed as a new support material for a Pd catalyst, which exhibits excellent catalytic activity for CO oxidative coupling to DMO. The conversion of CO and the selectivity to DMO reach up to 67% and 98% at 130 degrees C, respectively. Unfortunately, the high activity of Pd/ZnO catalyst gradually deteriorates within 100 h. To resolve the poor stability, we further introduce Mg2+ ions into the ZnO support. It is exciting that the catalytic activity of the Mg2+-doped-ZnO-supported Pd nanocatalyst (Pd/Mg-ZnO) can be maintained for at least 100 h without obvious decay. Catalytic stability is greatly improved by the doping of Mg2+ ions. XRD, UV-visible diffuse reflectance spectra, and high-angle annular dark field scanning transmission electron microscopy characterizations demonstrate that a small portion of Mg2+ ions are successfully incorporated into the lattice of the ZnO support to form a Zn-Mg oxide solid solution. XPS, in situ diffuse reflectance Fourier transform infrared spectroscopy, and H-2-temperature-programmed reduction results reveal that the introduction of Mg2+ ions into the ZnO support leads to a strong metalsupport interaction caused by electron transfer from the ZnO substrate to the Pd NPs, which can effectively restrain the sintering of the active Pd NPs; retard the growth of Pd NPs; and thus, enhance the catalytic stability.
机译:负载型Pd纳米粒子(NPs)的催化性能在很大程度上取决于载体材料是否将CO氧化偶联至草酸二甲酯(DMO)。本文中,由多孔纳米片组成的分层花状ZnO微球被用作Pd催化剂的新型载体材料,该材料对CO氧化偶联至DMO具有出色的催化活性。在130℃下,CO的转化率和DMO的选择性分别达到67%和98%。不幸的是,Pd / ZnO催化剂的高活性在100小时内逐渐恶化。为了解决稳定性差的问题,我们将Mg2 +离子进一步引入到ZnO载体中。令人兴奋的是,可以将Mg2 +掺杂的ZnO负载的Pd纳米催化剂(Pd / Mg-ZnO)的催化活性维持至少100小时,而不会出现明显的衰减。掺杂Mg2 +离子可大大提高催化稳定性。 XRD,紫外可见漫反射光谱和高角度环形暗场扫描透射电子显微镜表征表明,一小部分Mg2 +离子已成功掺入ZnO载体的晶格中,形成Zn-Mg氧化物固溶体。 XPS,原位漫反射傅立叶变换红外光谱和H-2-温度编程的还原结果表明,将Mg2 +离子引入ZnO载体会导致强的金属载体相互作用,这是由于电子从ZnO衬底转移到Pd NPs引起的,可以有效抑制活性钯纳米粒子的烧结;阻碍Pd NPs的生长;因此,提高了催化稳定性。

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