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Yolk–Shell Ni@SnO2 Composites with a Designable Interspace To Improve the Electromagnetic Wave Absorption Properties

作者:Biao Zhao, Xiaoqin Guo, Wanyu Zhao, Jiushuai Deng, Gang Shao, Bingbing Fan, Zhongyi Bai, Rui Zhang · 发表于:ACS Applied Materials & Interfaces · 年份:2016 · DOI:10.1021/acsami.6b10886 · 被引用次数:604 · 研究领域:Electromagnetic wave absorption materials、Advanced Antenna and Metasurface Technologies、Metamaterials and Metasurfaces Applications

In this study, yolk–shell Ni@SnO 2 composites with a designable interspace were successfully prepared by the simple acid etching hydrothermal method. The Ni@void@SnO 2 composites were characterized by X-ray diffraction, Fourier transform infrared spectroscopy, X-ray photoelectron spectroscopy, scanning electron microscopy, and transmission electron microscopy. The results indicate that interspaces exist between the Ni cores and SnO 2 shells. Moreover, the void can be adjusted by controlling the hydrothermal reaction time. The unique yolk–shell Ni@void@SnO 2 composites show outstanding electromagnetic wave absorption properties. A minimum reflection loss (RL min ) of −50.2 dB was obtained at 17.4 GHz with absorber thickness of 1.5 mm. In addition, considering the absorber thickness, minimal reflection loss, and effective bandwidth, a novel method to judge the effective microwave absorption properties is proposed. On the basis of this method, the best microwave absorption properties were obtained with a 1.7 mm thick absorber layer (RL min = −29.7 dB, bandwidth of 4.8 GHz). The outstanding electromagnetic wave absorption properties stem from the unique yolk–shell structure. These yolk–shell structures can tune the dielectric properties of the Ni@air@SnO 2 composite to achieve good impedance matching. Moreover, the designable interspace can induce interfacial polarization, multiple reflections, and microwave plasma.