微观结构
材料科学
掩蔽
介电常数
介电损耗
阻抗匹配
电介质
极化(电化学)
吸收(声学)
多孔性
电导率
磁场
电磁辐射
超材料
光电子学
光学
复合材料
电阻抗
化学
物理
物理化学
量子力学
作者
Qing Chang,Hongsheng Liang,Bin Shi,Hongjing Wu
出处
期刊:iScience
[Cell Press]
日期:2022-02-14
卷期号:25 (3): 103925-103925
被引量:74
标识
DOI:10.1016/j.isci.2022.103925
摘要
Fe3O4 has been extensively applied in electromagnetic wave absorption field profiting from its advantageous magnetic loss, low cost and environmental benignity. Nevertheless, the inherent drawbacks of high density, low permittivity and easily magnetic aggregation are still the obstacles for pristine Fe3O4 becoming ideal absorbents. To overcome such limitations, a design mentality of constructing 3D structure shaped by curled 2D porous surface is proposed in this study. 3D structure overcomes the easy-agglomeration issue of 2D materials and meanwhile maintains their conductivity. The complex permittivity of samples is regulated by adjusting the microstructure of Fe3O4 to achieve optimum impedance matching. Defect induced polarization and interfacial polarization are the main loss mechanisms. Impressively, the density of S0.5 is only 0.05078 g/cm3 and the effective absorption bandwidth is up to 6.24 GHz (11.76-18 GHz) at 1.8 mm. This work provided a new insight for structurally improving the EMW absorption performance of pure magnetic materials.
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