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In situ synthesis of novel urchin-like ZnS/Ni3S2@Ni composite with a core-shell structure for efficient electromagnetic absorption

机译:原位合成具有核-壳结构的新型顽童状ZnS / Ni3S2 @ Ni复合材料以有效吸收电磁波

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A novel urchin-like ZnS/Ni3S2@Ni composite with a core-shell structure was successfully synthesized by a facile two-stage method. The structure and morphology were investigated by X-ray diffraction, scanning electron microscopy, transmission electron microscopy and energy dispersive spectrometry. The influence of reaction temperature on the structure and morphology of the ZnS/Ni3S2@Ni products was investigated by the aid of XRD and SEM techniques. A plausible formation mechanism for the core-shell urchin-like architectures was proposed based on temperature dependent experiments. Electromagnetic absorption measurements show that the urchin-like ZnS/Ni3S2@Ni composite possesses outstanding electromagnetic absorption properties compared with other ZnS/Ni3S2@Ni composites. The optimal reflection loss of -27.6 dB can be observed at 5.2 GHz and the effective absorption (below -10 dB, 90% electromagnetic absorption) bandwidth is 2.5 GHz (12.2-14.7 GHz) with a thickness of only 1.0 mm. The location of the minimum reflection loss can be tuned between 4.6 GHz and 18.0 GHz for the absorber by tuning the thickness between 0.8-2.5 mm. The enhanced electromagnetic absorption properties were attributed to a synergistic effect between dielectric loss and magnetic loss, multiple interfacial polarization resulting from the heterogeneous structure of the core-shell ternary ZnS/Ni3S2@Ni composite, good impedance matching and a unique urchin-like structure.
机译:通过一种简便的两步法成功地合成了具有核-壳结构的新型顽童状ZnS / Ni3S2 @ Ni复合材料。通过X射线衍射,扫描电子显微镜,透射电子显微镜和能量色散光谱法研究其结构和形态。利用XRD和SEM技术研究了反应温度对ZnS / Ni3S2 @ Ni产物的结构和形貌的影响。基于温度依赖性实验,提出了一种适用于核-壳类海胆结构的合理形成机理。电磁吸收测量结果表明,与其他ZnS / Ni3S2 @ Ni复合材料相比,类似海胆的ZnS / Ni3S2 @ Ni复合材料具有出色的电磁吸收性能。在5.2 GHz时可以观察到-27.6 dB的最佳反射损耗,有效吸收(低于-10 dB,90%的电磁吸收)带宽为2.5 GHz(12.2-14.7 GHz),厚度仅为1.0 mm。通过在0.8-2.5 mm之间调节厚度,可以将吸收器的最小反射损耗的位置调节在4.6 GHz和18.0 GHz之间。增强的电磁吸收性能归因于介电损耗与磁损耗之间的协同效应,核-壳三元ZnS / Ni3S2 @ Ni复合材料的异质结构导致的多重界面极化,良好的阻抗匹配和独特的海胆状结构。

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