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纳米级铁掺杂二氧化铈储氧材料(Fe : CeO(2-x))中铁掺杂剂的局部环境

Local environment of Fe dopants in nanoscale Fe : CeO(2-x) oxygen storage material.

作者信息

Meledina M, Turner S, Galvita V V, Poelman H, Marin G B, Van Tendeloo G

机构信息

Electron Microscopy for Materials Science (EMAT), Department of Physics, University of Antwerp, Groenenborgerlaan 171, B-2020 Antwerp, Belgium.

出版信息

Nanoscale. 2015 Feb 21;7(7):3196-204. doi: 10.1039/c4nr06060a.

Abstract

Nanoscale Fe : CeO2-x oxygen storage material for the process of chemical looping has been investigated by advanced transmission electron microscopy and electron energy-loss spectroscopy before and after a model looping procedure, consisting of redox cycles at heightened temperature. Separately, the activity of the nanomaterial has been tested in a toluene total oxidation reaction. The results show that the material consists of ceria nanoparticles, doped with single Fe atoms and small FeOx clusters. The iron ion is partially present as Fe(3+) in a solid solution within the ceria lattice. Furthermore, enrichment of reduced Fe(2+) species is observed in nanovoids present in the ceria nanoparticles, as well as at the ceria surface. After chemical looping, agglomeration occurs and reduced nanoclusters appear at ceria grain boundaries formed by sintering. These clusters originate from surface Fe(2+) aggregation, and from bulk Fe(3+), which "leaks out" in reduced state after cycling to a slightly more agglomerated form. The activity of Fe : CeO2 during the toluene total oxidation part of the chemical looping cycle is ensured by the dopant Fe in the Fe1-xCexO2 solid solution, and by surface Fe species. These measurements on a model Fe : CeO2-x oxygen storage material give a unique insight into the behavior of dopants within a nanosized ceria host, and allow to interpret a plethora of (doped) cerium oxide-based reactions.

摘要

通过先进的透射电子显微镜和电子能量损失谱,对用于化学循环过程的纳米级铁掺杂二氧化铈(Fe : CeO2-x)储氧材料在由高温下的氧化还原循环组成的模拟循环程序前后进行了研究。另外,还在甲苯完全氧化反应中测试了该纳米材料的活性。结果表明,该材料由掺杂有单个铁原子和小的FeOx团簇的二氧化铈纳米颗粒组成。铁离子部分以Fe(3+)的形式存在于二氧化铈晶格中的固溶体中。此外,在二氧化铈纳米颗粒中的纳米空隙以及二氧化铈表面观察到还原态Fe(2+)物种的富集。化学循环后,会发生团聚,并且在烧结形成的二氧化铈晶界处出现还原的纳米团簇。这些团簇源自表面Fe(2+)的聚集以及体相Fe(3+),Fe(3+)在循环后以还原态“泄漏”出来,形成稍微更团聚的形式。在化学循环的甲苯完全氧化部分过程中,Fe : CeO2的活性由Fe1-xCexO2固溶体中的掺杂剂铁以及表面铁物种来保证。对模型Fe : CeO2-x储氧材料的这些测量,为纳米级二氧化铈主体中掺杂剂的行为提供了独特的见解,并有助于解释大量基于(掺杂)氧化铈的反应。

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