首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Facile synthesis of size-tunable, multilevel nanoporous Fe_3O_4 microspheres for application in electromagnetic wave absorption
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Facile synthesis of size-tunable, multilevel nanoporous Fe_3O_4 microspheres for application in electromagnetic wave absorption

机译:尺寸可调,多级纳米多孔Fe_3O_4微球的简便合成,可用于电磁波吸收

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摘要

Multilevel nanoporous Fe_3O_4 microspheres were solvothermally synthesized using a functionalized ionic liquid [BMIM][FeCl_4] as the iron source. Size of these microspheres could be easily tuned over the range of 26-411 nm by varying the volume ratio of alkali solution added. SEM, TEM and BET isotherm characterizations confirmed that Fe_3O_4 microspheres were formed by the assembly of nanoparticles with several nanometers in diameter and had a multilevel pore structure, including quasi-micropores, mesopores and macropores in/on each microsphere. The electromagnetic parameters of the Fe_3O_4 microspheres indicated that those nanopores contributed to the increase of dielectric loss and made an effective impedance match between dielectric loss and magnetic loss, thus enhancing the electromagnetic wave absorption of Fe_3O_4 microspheres. The minimum reflection loss of 80 wt% Fe_3O_4/epoxy resin composites showed excellent dual adsorptions at both low frequencies and high frequencies (-40.0 dB at 1.4 GHz with a sample thickness of 5.7 mm and -25.3 dB at 16.5 GHz with a sample thickness of 3 mm), which were related to the magnetic loss and dielectric loss offered by the porous Fe_3O_4 microspheres.
机译:以功能化离子液体[BMIM] [FeCl_4]为铁源,通过溶剂热合成了多级纳米多孔Fe_3O_4微球。通过改变添加的碱溶液的体积比,可以在26-411 nm的范围内轻松调整这些微球的尺寸。 SEM,TEM和BET等温线表征证实了Fe_3O_4微球是由直径为几纳米的纳米颗粒组装而成的,并具有多级孔结构,包括每个微球内/上的准微孔,中孔和大孔。 Fe_3O_4微球的电磁参数表明,这些纳米孔有助于介电损耗的增加,并使介电损耗与磁损耗之间达到有效的阻抗匹配,从而增强了Fe_3O_4微球的电磁波吸收。 80 wt%Fe_3O_4 /环氧树脂复合材料的最小反射损耗在低频和高频下均表现出优异的双重吸附(在1.4 GHz下,样品厚度为5.7 mm,在-40.0 dB下;在16.5 GHz下,样品厚度为-25.3 dB,在-25.3 dB下3毫米),这与多孔Fe_3O_4微球提供的磁损耗和介电损耗有关。

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