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超顺磁 γ-Fe2O3@SiO2 纳米粒子:[VO(acac)2]固定化的新型载体。

Superparamagnetic gamma-Fe2O3@SiO2 nanoparticles: a novel support for the immobilization of [VO(acac)2].

机构信息

REQUIMTE, Departamento de Química e Bioquímica, Faculdade de Ciências, Universidade do Porto, Rua do Campo Alegre, s/n, 4169-007, Porto, Portugal.

出版信息

Dalton Trans. 2010 Mar 21;39(11):2842-54. doi: 10.1039/b920853d. Epub 2010 Feb 5.

Abstract

This work reports a detailed investigation about the physicochemical properties of superparamagnetic gamma-Fe(2)O(3) nanomaterial synthesized by the co-precipitation method and coated with two silica shells, and its application as support for the immobilization of oxovanadium(IV) acetylacetonate ([VO(acac)(2)]). The influence of the silica coatings on the surface composition and physicochemical interactions of the core-shell nanocomposites is discussed based on the combination of several techniques: electron microscopy techniques (SEM and TEM with EDS), DLS, powder XRD, XPS, FTIR and magnetic characterization. The identity of the iron oxide, gamma-Fe(2)O(3), was confirmed by XPS, FTIR and by the Rietveld refinement of the PXRD pattern. The results obtained by electron microscopy techniques, XRD and magnetization indicated that the gamma-Fe(2)O(3) nanoparticles are superparamagnetic and present an average size of approximately 6.5 nm. The first silica coating leads to a core-shell nanomaterial with an average particle size of 21 nm and upon the second coating, the average size increases to 240 nm. Magnetic measurements revealed that the silica-coated nanomaterials maintain the superparamagnetic state at room temperature, although with an expected reduction of the magnetization saturation due to the increase of the silica shell thickness. Furthermore, a numerical fit of the temperature dependence of magnetization was performed to determine the core size distribution and the effect of the silica coatings on the dipolar magnetic interactions. [VO(acac)(2)] was covalently immobilized on the surface of the silica-coated magnetic nanoparticles functionalized with amine groups, as confirmed by chemical analysis and XPS. In a proof-of-principle experiment, we demonstrated the catalytic performance of the novel magnetic hybrid nanomaterial in the epoxidation of geraniol, which presented high selectivity towards the 2,3-epoxygeraniol product and easy recovery by magnetic separation.

摘要

这项工作报道了一种详细的研究,涉及通过共沉淀法合成的超顺磁 γ-Fe(2)O(3)纳米材料的物理化学性质,该纳米材料表面涂有两层硅壳,并将其应用于固定氧钒(IV)乙酰丙酮([VO(acac)(2)]。通过几种技术的结合,讨论了硅壳涂层对核壳纳米复合材料表面组成和物理化学相互作用的影响:电子显微镜技术(SEM 和 TEM 与 EDS)、DLS、粉末 XRD、XPS、FTIR 和磁性表征。XPS、FTIR 和 PXRD 图谱的 Rietveld 精修证实了氧化铁 γ-Fe(2)O(3)的存在。电子显微镜技术、XRD 和磁化结果表明,γ-Fe(2)O(3)纳米颗粒是超顺磁的,平均粒径约为 6.5nm。第一次硅壳涂层得到平均粒径为 21nm 的核壳纳米材料,第二次涂层后平均粒径增加到 240nm。磁性测量表明,硅壳涂层纳米材料在室温下保持超顺磁状态,尽管由于硅壳厚度的增加,磁化饱和预计会降低。此外,还进行了磁化温度依赖性的数值拟合,以确定核尺寸分布和硅壳涂层对偶极磁相互作用的影响。[VO(acac)(2)]通过化学分析和 XPS 证实,通过胺功能化的硅壳涂层磁性纳米粒子表面的共价固定。在一个原理验证实验中,我们展示了新型磁性杂化纳米材料在香叶醇环氧化反应中的催化性能,该反应对 2,3-环氧香叶醇产物具有高选择性,并且通过磁分离很容易回收。

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