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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Chromium(III) Terephthalate Metal Organic Framework (MIL-101): HF-Free Synthesis, Structure, Polyoxometalate Composites, and Catalytic Properties
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Chromium(III) Terephthalate Metal Organic Framework (MIL-101): HF-Free Synthesis, Structure, Polyoxometalate Composites, and Catalytic Properties

机译:对苯二甲酸铬(III)金属有机骨架(MIL-101):无HF合成,结构,多金属氧酸盐复合物和催化性能

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摘要

Hybrid materials of the metal—organic framework (MOF), chromium(III) terephthalate (MIL-101), and phosphotungstic acid (PTA) were synthesized in aqueous media in the absence of hydrofluoric acid. XRD analysis of the MIL101/PTA composites indicates the presence of ordered PTA assemblies residing in both the large cages and small pores of MIL-101, which suggests the formation of previously undocumented structures. The MIL101/PTA structure enables a PTA payload 1.5—2 times higher than previously achieved. The catalytic performance of the MIL101/PTA composites was assessed in the Baeyer condensation of benzaldehyde and 2-naphthol, in the three-component condensation of benzaldehyde, 2-naphthol, and acetamide, and in the epoxidation of caryophyllene by hydrogen peroxide. The catalytic efficiency was demonstrated by the high (over 80—90%) conversion of the reactants under microwave-assisted heating. In four consecutive reaction cycles, the catalyst recovery was in excess of 75%, whereas the product yields were maintained above 92%. The simplicity of preparation, exceptional stability, and reactivity of the novel composites indicate potential in utilization of these catalytic matrices in a multitude of catalytic reactions and engineering processes.
机译:在不存在氢氟酸的情况下,在水性介质中合成了金属有机骨架(MOF),对苯二甲酸铬(III)(MIL-101)和磷钨酸(PTA)的杂化材料。 MIL101 / PTA复合材料的XRD分析表明,有序的PTA组件存在于MIL-101的大笼子和小孔中,这表明形成了以前未记录的结构。 MIL101 / PTA结构使PTA有效负载比以前达到的高1.5到2倍。 MIL101 / PTA复合材料的催化性能在苯甲醛和2-萘酚的Baeyer缩合,苯甲醛,2-萘酚和乙酰胺的三组分缩合,以及过氧化氢对石竹烯的环氧化中进行了评估。微波辅助加热下反应物的高转化率(超过80-90%)证明了催化效率。在四个连续的反应循环中,催化剂的回收率超过75%,而产物收率保持在92%以上。新型复合材料的制备简单,出色的稳定性和反应性表明,在多种催化反应和工程过程中,利用这些催化基质的潜力很大。

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