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Interchange core/shell assembly of diluted magnetic semiconductor CeO2 and ferromagnetic ferrite Fe3O4 for microwave absorption

机译:稀磁半导体CeO2和铁磁铁氧体Fe3O4的互换核/壳组件,用于微波吸收

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摘要

Core/shell-structured CeO2/Fe3O4 and Fe3O4/CeO2 nanocapsules are prepared by interchange assembly of diluted magnetic semiconductor CeO2 and ferromagnetic ferrite Fe3O4 as the core and the shell, and vice versa, using a facile two-step polar solvothermal method in order to utilize the room-temperature ferromagnetism and abundant O-vacancies in CeO2, the large natural resonance in Fe3O4, and the O-vacancy-enhanced interfacial polarization between CeO2 and Fe3O4 for new generation microwave absorbers. Comparing to Fe3O4/CeO2 nanocapsules, the CeO2/Fe3O4 nanocapsules show an improved real permittivity of 3-10% and an enhanced dielectric resonance of 1.5 times at 15.3 GHz due to the increased O-vacancy concentration in the CeO2 cores of larger grains as well as the O-vacancy-induced enhancement in interfacial polarization between the CeO2 cores and the Fe3O4 shells, respectively. Both nanocapsules exhibit relatively high permeability in the low-frequency S and C microwave bands as a result of the bi-magnetic core/shell combination of CeO2 and Fe3O4. The CeO2/Fe3O4 nanocapsules effectively enhance permittivity and permeability in the high-frequency Ku band with interfacial polarization and natural resonance at similar to 15 GHz, thereby improving absorption with a large reflection loss of -28.9 dB at 15.3 GHz. Experimental and theoretical comparisons withCeO(2) and Fe3O4 nanoparticles are also made.
机译:核/壳结构的CeO2 / Fe3O4和Fe3O4 / CeO2纳米胶囊是通过将稀释的磁性半导体CeO2和铁磁铁氧体Fe3O4作为核和壳进行交换组装而制备的,反之亦然,使用一种容易的两步极性溶剂热法进行制备。利用了室温铁磁和CeO2中大量的O空位,Fe3O4中的大自然共振以及CeO2和Fe3O4之间的O空位增强界面极化,用于新一代微波吸收器。与Fe3O4 / CeO2纳米胶囊相比,CeO2 / Fe3O4纳米胶囊由于在较大晶粒的CeO2核中O的空位浓度也增加,因此显示出3-10%的实际介电常数和15.3 GHz处1.5倍的增强介电共振。分别是CeO2核和Fe3O4壳之间由O空位引起的界面极化增强。由于CeO2和Fe3O4的双磁核/壳组合,两个纳米胶囊在低频S和C微波波段均显示出较高的磁导率。 CeO2 / Fe3O4纳米胶囊有效地增强了高频Ku频段的介电常数和磁导率,具有类似于15 GHz的界面极化和自然共振,从而在15.3 GHz时具有-28.9 dB的大反射损耗,从而提高了吸收率。实验和理论比较与CeO(2)和Fe3O4纳米粒子。

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