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TiO2-Containing Carbon Derived from a Metal-Organic Framework Composite: A Highly Active Catalyst for Oxidative Desulfurization

机译:含有金属有机骨架复合材料的TiO 2的碳:一种高活性催化剂,用于氧化脱硫

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A new metal organic framework (MOP) composite consisting of Ti- and Zn-based MOFs (ZIF-8(x) @H2N-MIL-125; in brief, ZIF(x)@MOF) was designed and synthesized. The pristine MOF [H2N-MIL-125 (MOF)]- and an MOF-composite [ZIF(30)@MOF]-derived mesoporous carbons consisting of TiO2 nanoparticles were prepared by pyrolysis (named MDC-P and MDC-C, respectively). MDC-C showed a higher surface area, larger pore sizes, and larger mesopore volumes than MD C-P. In addition, the TiO2 nanoparticles on MDC-C have more uniform shapes and sizes and are smaller than those of MDC-P. The obtained MDC-C and MDC-P [together with MOF, ZIF(30)@MOF, pure/nanocrystalline TiO2, and activated carbon] were applied in the oxidative desulfurization reaction of dibenzothiophene in a model fuel. The MDC-C, even with a lower TiO2 content than that of MDC-P, showed an outstanding catalytic performance, especially with a very low catalyst dose (i.e., a very high quantity of dibenzothiophene was converted per unit weight of the catalyst), fast kinetics (similar to 3 times faster than that for MDC-P), and a low activation energy (lower than that for any reported catalyst) for the oxidation of dibenzothiophene. The large mesopores of MDC-C and the well-dispersed/small TiO2 might be the dominant factors for the superior catalytic conversions. The oxidative desulfurization of other sulfur-containing organic compounds with various electron densities was also studied with MDC-C to understand the mechanism of catalysis. Moreover, the MDC-C catalyst can be reused many times in the oxidative desulfurization reaction after a simple washing with acetone. Finally, composing MOFs and subsequent pyrolysis is suggested as an effective way to prepare a catalyst with well-dispersed active sites, large pores, and high mesoporosity.
机译:由基于Ti和Zn的MOF(ZIF-8(X)@ H2N-MIL-125组成的新金属有机框架(MOP)复合材料;简要而言,设计并合成了ZIF(X)@MOF)。通过热解(分别为MDC-P和MDC-C分别制备了由TiO2纳米颗粒组成的MOF - 复合物[ZIF(30)@MOF] - 和MOF - 复合材料[ZIF(30)] - 和由TiO2纳米颗粒组成的介孔碳(分别称为MDC-P和MDC-C. )。 MDC-C显示出高度的表面积,较大的孔径和比MD C-P更大的甲基孔体积。此外,MDC-C上的TiO2纳米颗粒具有更均匀的形状和尺寸,并且小于MDC-P的尺寸。将所得MDC-C和MDC-P [与MOF,ZIF(30)@MOF,纯/纳米晶体TiO 2和活性炭一起应用于二苯并噻吩的模型燃料中的氧化脱硫反应。 MDC-C,即使具有低于MDC-P的TiO 2含量,也表现出优异的催化性能,特别是具有非常低的催化剂剂量(即,每单位重量转化催化剂的非常大量的二苯并噻吩),快速动力学(与MDC-P的速度快3倍),以及低激活能量(低于任何报道的催化剂的催化剂),用于二苯并噻吩的氧化。 MDC-C和分散良好的/小TiO2的大型中孔可能是优异催化转化的主要因素。还使用MDC-C研究了具有各种电子密度的其他含硫有机化合物的氧化脱硫,以了解催化的机制。此外,在用丙酮的简单洗涤后,MDC-C催化剂可以在氧化脱硫反应中重复使用。最后,建议制备MOF和随后的热解,作为制备具有良好分散的活性位点,大孔和高型孔隙度的催化剂的有效方法。

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