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Microwave absorption enhancement of multifunctional composite microspheres with spinel Fe _3O _4 cores and anatase TiO _2 shells

机译:具有尖晶石Fe _3O _4核和锐钛矿型TiO _2壳的多功能复合微球的微波吸收增强

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摘要

Multifunctional composite microspheres with spinel Fe _3O _4 cores and anatase TiO _2 shells (Fe _3O _4@TiO _2) are synthesized by combining a solvothermal reaction and calcination process. The size, morphology, microstructure, phase purity, and magnetic properties are characterized by scanning electron microscopy, transmission electron microscopy (TEM), high-resolution TEM, selected-area electron diffraction, electron energy loss spectroscopy, powder X-ray diffraction, and superconducting quantum interference device magnetometry. The results show that the as-synthesized microspheres have a unique morphology, uniform size, good crystallinity, favorable superparamagnetism, and high magnetization. By varying the experimental conditions such as Fe _3O _4 size and concentration, microspheres with different core sizes and shell thickneses can be readily synthesized. Furthermore, the microwave absorption properties of these microspheres are investigated in terms of complex permittivity and permeability. By integration of the chemical composition and unique structure, the Fe _3O _4@TiO _2 microspheres possess lower reflection loss and a wider absorption frequency range than pure Fe _3O _4. Moreover, the electromagnetic data demonstrate that Fe _3O _4@TiO _2 microspheres with thicker TiO _2 shells exhibit significantly enhanced microwave absorption properties compared to those with thinner TiO _2 shells, which may result from effective complementarities between dielectric loss and magnetic loss. All the results indicate that these Fe _3O _4@TiO _2 microspheres may be attractive candidate materials for microwave absorption applications. Microspheres with spinel Fe _3O _4 cores and anatase TiO _2 shells are synthesized with different core sizes and shell thickneses. The as-synthesized microspheres have a unique morphology, uniform size, good crystallinity, favorable superparamagnetism, and high magnetization. The Fe _3O _4@TiO _2 microspheres possess lower reflection loss and wider absorption frequency range than pure Fe _3O _4.
机译:溶剂热反应与煅烧工艺相结合,合成了具有尖晶石Fe _3O _4核和锐钛矿型TiO _2壳(Fe _3O _4 @ TiO _2)的多功能复合微球。尺寸,形态,微观结构,相纯度和磁性能通过扫描电子显微镜,透射电子显微镜(TEM),高分辨率TEM,选择区域电子衍射,电子能量损失光谱,粉末X射线衍射和超导量子干涉装置的磁力测定法。结果表明,合成后的微球具有独特的形态,均匀的尺寸,良好的结晶度,良好的超顺磁性和高磁化强度。通过改变Fe _3O _4的大小和浓度等实验条件,可以容易地合成具有不同核尺寸和壳厚度的微球。此外,根据复介电常数和磁导率研究了这些微球的微波吸收特性。通过整合化学成分和独特的结构,Fe _3O _4 @ TiO _2微球比纯Fe _3O _4具有更低的反射损耗和更宽的吸收频率范围。此外,电磁数据表明,与具有较薄TiO _2壳的Fe _3O _4 @ TiO _2微球相比,具有较薄TiO _2壳的Fe _3O _4 @ TiO _2微球具有显着增强的微波吸收性能,这可能是由于介电损耗和磁损耗之间的有效互补所致。所有结果表明,这些Fe _3O _4 @ TiO _2微球可能是有吸引力的微波吸收应用候选材料。合成了具有尖晶石Fe _3O _4核和锐钛矿型TiO _2壳的微球,具有不同的核尺寸和壳厚度。合成后的微球具有独特的形态,均匀的尺寸,良好的结晶度,良好的超顺磁性和高磁化强度。与纯Fe _3O _4相比,Fe _3O _4 @ TiO _2微球具有更低的反射损耗和更宽的吸收频率范围。

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