首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Hydrophobic graphene nanosheets decorated by monodispersed superparamagnetic Fe3O4 nanocrystals as synergistic electromagnetic wave absorbers
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Hydrophobic graphene nanosheets decorated by monodispersed superparamagnetic Fe3O4 nanocrystals as synergistic electromagnetic wave absorbers

机译:由单分散超顺磁性Fe3O4纳米晶体作为协同电磁波吸收体装饰的疏水性石墨烯纳米片

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The comprehension of the interactions between the building blocks in hybrids can give us an insight into the design and application of highly efficient electromagnetic wave absorption materials. Herein, we report a facile in situ thermal decomposition route for the fabrication of superparamagnetic Fe3O4 nanocrystals anchored on hydrophobic graphene nanosheets as synergistic electromagnetic wave absorbers. The microstructures and interactions of the Fe3O4-graphene hybrids are systematically investigated, and the results suggest that the Fe3O4 nanocrystals are uniformly decorated and chemically bonded on the surface of graphene nanosheets without obvious conglomeration or large vacancies. The Fe3O4-graphene hybrids show hydrophobic and superparamagnetic characteristics. Combing the benefits of superparamagnetic Fe3O4 nanocrystals and electrically conducting graphene, the Fe3O4-graphene hybrids show a maximum reflection loss (RL) of -40 dB at 6.8 GHz with a matching thickness of 4.5 mm, and the effective absorption bandwidth (RL < -10 dB) is 4.6-18 GHz with an absorber thickness of only 2-5 mm. However, due to the lack of dielectric loss, only a weak RL of -5 dB is obtained in bare Fe3O4 nanocrystals. The remarkably enhanced electromagnetic wave absorption properties of the Fe3O4-graphene hybrids are owing to effective impedance matching and synergistic interaction. Moreover, compared with other reported graphene-based electromagnetic wave absorption materials, the hydrophobic Fe3O4-graphene hybrids prepared in this work are considered to be more stable and suitable to be applied in some particular environmental conditions, such as rain.
机译:理解混合动力中各构造块之间的相互作用,可以使我们深入了解高效电磁波吸收材料的设计和应用。在这里,我们报告了一种简便的原位热分解路线,用于制造锚固在疏水性石墨烯纳米片上的超顺磁性Fe3O4纳米晶体作为协同电磁波吸收剂。对Fe3O4-石墨烯杂化物的微观结构和相互作用进行了系统的研究,结果表明Fe3O4纳米晶体被均匀地装饰并化学键合在石墨烯纳米片表面,没有明显的团聚或大的空位。 Fe3O4-石墨烯杂化物表现出疏水和超顺磁特性。结合超顺磁性Fe3O4纳米晶体和导电石墨烯的优势,Fe3O4-石墨烯杂化物在6.8 GHz频率下具有-40 dB的最大反射损耗(RL),匹配厚度为4.5 mm,有效吸收带宽(RL <-10 dB)是4.6-18 GHz,吸收层厚度仅为2-5 mm。然而,由于缺少介电损耗,在裸露的Fe3O4纳米晶体中仅获得了-5 dB的弱RL。 Fe3O4-石墨烯杂化体的电磁波吸收性能显着增强,这归因于有效的阻抗匹配和协同相互作用。而且,与其他已报道的基于石墨烯的电磁波吸收材料相比,在这项工作中制备的疏水性Fe3O4-石墨烯杂化物被认为更稳定,适合在某些特殊的环境条件下使用,例如雨水。

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