<![CDATA[Graphene multilayered sheets assembled by porous Bi <ce:inf loc='post'>2</ce:inf>Fe <ce:inf loc='post'>4</ce:inf>O <ce:inf loc='post'>9</ce:inf> microspheres and the excellent electromagnetic wave absorption properties]]>
首页> 外文期刊>Chemical engineering journal >2Fe 4O 9 microspheres and the excellent electromagnetic wave absorption properties]]>
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2Fe 4O 9 microspheres and the excellent electromagnetic wave absorption properties]]>

机译:<! :INF LOC =“POST”> 9 微球和优异的电磁波吸收性能]]>

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Highlights?RGO/porous Bi2Fe4O9composite was fabricated via etching process.?The hierarchical structure successively benefits to attenuation of EM wave.?An optimal RL as low as ?71.88?dB is observed with the thickness of 2.0?mm.AbstractUsing Bi2Fe4O9microplatelets as precursors, we developed a facile etching strategy for three-dimensional porous Bi2Fe4O9microspheres with reduced graphene oxide (rGO) multilayered sheets for high-performance electromagnetic (EM) absorbing material. In a solution of N,N dimenthyl formamide (DMF), hydrazine and methyl mercaptoacetate, the precursors synchronously were subjected to a dissolution-recrystallization/reduction process to obtain a hybrid of numerous Bi2Fe4O9fragments and graphene to form the rGO/porous Bi2Fe4O9composite. The porous Bi2Fe4O9microspheres with an mean diameter of 500?nm were uniformly assembled on the graphene multilayered sheets without obvious aggregation. Such three-dimensional structure rGO/porous Bi2Fe4O9composite not only utilize efficiently the high conductivity and specific surface area of graphene, but only the hierarchical architectures of porous Bi2Fe4O9microspheres. The results show that the rGO/porous Bi2Fe4O9composite exhibits a maximum reflection coefficient of ?71.88?dB at 13.8?GHz with a sample thickness of only 2.0?mm and an effective absorption bandwidth (reflection loss below ?10?dB) of 4.24?GHz, greatly superior to the present graphene-based metallic oxide composite. The strategy paves an efficient way for designing new candidate for lightweight electromagnetic wave (EMW) absorbing materials.]]>
机译:<![cdata [ 亮点 Rgo / POORY BI 2 FE 4 o 9 通过蚀刻过程制造的复合材料。 连续福利分层结构衰减EM波。 最佳RL,低于α71.88?DB的厚度为2.0Ωmm。 < / CE:简单 - 段> < CE:抽象XMLNS:CE =“http://www.elsevier.com/xml/common/dtd”xmlns =“http://www.elsevier.com/xml/ja/dtd”class =“author”XML: lang =“en”id =“ab010”视图=“全部”> 抽象 使用bi 2 fe 4 O 9 Microplatelets作为前体,我们为三维多孔BI 2 FE 4 O 9 具有较低的石墨烯氧化物的微球(RGO)用于高性能电磁(EM)吸收材料的多层纸张。在N,N DimperHyl甲酰胺(DMF),肼和甲基巯基丙酸甲磺酸酯的溶液中,对前体同步地进行溶解 - 再结晶/还原过程,以获得众多BI 2 < / ce:inf> fe 4 o 9 碎片和石墨烯形成rgo /多孔BI 2 FE 4 O 9 复合材料。多孔BI 2 FE 4 O 9 平均直径为500Ω·Nm的微球在石墨烯多层片上均匀地组装,而无明显聚集。这种三维结构RGO /多孔BI 2 FE 4 O 9 综合不仅利用了石墨烯的高电导率和特定表面区域,而且只有多孔BI 2 FE 4 O 9 微球。结果表明,RGO /多孔BI 2 FE 4 O 9 复合材料表现出最大反射系数的α71.88≤DB,在13.8Ω·GHz,样品厚度仅为2.0Ωmm和有效的吸收带宽(下面的反射损耗?10?dB) 4.24?GHz,大大优于本发明的石墨烯基金属氧化物复合材料。该策略为设计轻质电磁波(EMW)吸收材料设计新的候选者提供了一种有效的方法。 ]]>

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