首页> 外文期刊>ACS Sustainable Chemistry & Engineering >Composition and Structure Design of Co3O4 Nanowires Network by Nickel Foam with Effective Electromagnetic Performance in C and X Band
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Composition and Structure Design of Co3O4 Nanowires Network by Nickel Foam with Effective Electromagnetic Performance in C and X Band

机译:CO3O4纳米线网络由C和X带有效电磁性能的CO3O4纳米线网络的组成和结构设计

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摘要

Effectively attenuating electromagnetic waves in the C and X band through composition and structure design remains a formidable challenge for most absorbing materials. To achieve tunable electromagnetic properties, in this study, one-dimensional (1D) Co3O4 nanowires were successfully grown onto the 3D porous nickel foam (NF) through a facile liquid synthesis. Herein, electromagnetic parameters and microperspective structures have been controlled via changing the hydrothermal temperature, more importantly, the as-prepared composites at 100 degrees C exhibited prominent microwave dissipation performance in gigahertz. The minimum reflection loss (RL) value reached -41.1 dB at a relatively small matching thickness of 2.1 mm, and the optimal effective bandwidth (RL < -10 dB) of 3.46 GHz at 2.3 mm was also achieved. It should be noted that the RL values of the obtained NF@Co3O4 samples appeared two and three sharp peaks at the thickness of 2.3 mm, 2.5 mm, respectively. Good impedance matching, efficient magnetic loss, dielectric loss, and suitable interfacial polarization should be indispensable for ideal microwave absorption. The porous binary NF@Co3O4 composites not only employ cost-effective raw materials for microwave-absorbing materials in many applications, but also dissipate incident microwave which is in favor of reducing severe electromagnetic pollution all over the world.
机译:通过组合物和结构设计有效地衰减C和X带中的电磁波仍然是最具吸收材料的强大挑战。为了实现可调谐电磁特性,在该研究中,通过容易液合成成功地生长在3D多孔镍泡沫(NF)上的一维(1D)CO3O4纳米线。这里,通过改变水热温度来控制电磁参数和微量施加结构,更重要的是,在100摄氏度下的制备的复合材料表现出千兆赫兹的显着微波耗散性能。最小反射损耗(RL)值达到-41.1dB的匹配厚度为2.1mm,也实现了2.3毫米的最佳有效带宽(RL <-10 dB)。应当注意,所得NF @ CO3O4样品的RL值分别出现了2.3mm,2.5mm的厚度为2和三个尖锐的峰。对于理想的微波吸收,良好的阻抗匹配,有效的磁力损失,介电损耗和合适的界面极化应该是必不可少的。多孔二进制NF @ CO3O4复合材料不仅采用了许多应用中的微波吸收材料的成本效益的原料,而且消散了事件微波,这有利于世界各地的严重电磁污染。

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