J. Mater. Sci. Technol. ›› 2024, Vol. 176: 1-12.DOI: 10.1016/j.jmst.2023.08.022

Special Issue: Composites 2024 Electronic materials 2024 Nano materials 2024 Electromagnetic wave absorbing materials

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Interface engineering and impedance matching strategy to develop core@shell urchin-like NiO/Ni@carbon nanotubes nanocomposites for microwave absorption

Tianming Jiaa, Yanling Haob, Xiaosi Qia,*, Yongchao Raoa, Lei Wangc, Junfei Dinga, Yunpeng Qua, Wei Zhongd   

  1. aCollege of Physics, Guizhou Province Key Laboratory for Photoelectrics Technology and Application, Guizhou University, Guiyang 550025, China;
    bMinzu Normal University of Xingyi, Xingyi 562400, China;
    cNational Demonstration Center for Experimental Materials Science and Engineering Education Jiangsu University of Science and Technology, Zhenjiang 212003, China;
    dNational Laboratory of Solid State Microstructures and Jiangsu Provincial Laboratory for NanoTechnology, Nanjing University, Nanjing 210093, China
  • Received:2023-07-26 Revised:2023-08-22 Accepted:2023-08-23 Published:2024-03-20 Online:2024-03-15
  • Contact: *E-mail address: xsqi@gzu.edu.cn (X. Qi).

Abstract: It is well recognized that interfacial effect and/or impedance matching play a great impact on microwave absorption. Herein, we proposed a facile strategy to take full advantage of interface engineering and impedance matching for boosting microwave absorption performance (MAPs). Three-dimensional (3D) hierarchical urchin-like core@shell structured NiO/Ni@CNTs multicomponent nanocomposites (MCNCs) were elaborately constructed and produced in high efficiency through a facile continuous chemical bath deposition, thermal treatment, and catalytic chemical vapor decomposition process. By controlling the pyrolysis time, the NiO/Ni@CNTs urchin-like MCNCs with different lengths and aggregation degrees of CNTs could be selectively synthesized. The obtained results revealed that the enhanced CNT contents provided abundant interfaces and effectively aggrandized their interfacial effects, which resulted in improved polarization loss, conductivity loss, and comprehensive MAPs. Impressively, the interfaces and impedance matching in the designed NiO/Ni@CNTs urchin-like MCNCs could be optimized by regulating the pyrolysis temperature, which further improved the comprehensive MAPs. And the designed NiO/Ni@CNTs urchin-like MCNCs could simultaneously display strong absorption capabilities, broad absorption bandwidths, and thin matching thicknesses. Therefore, our findings not only provided a simple and universal approach to produce core@shell structured magnetic carbon-based urchin-like MCNCs but also presented an interface engineering and impedance matching strategy to develop the tunable, strong absorption, broadband, lightweight high-efficiency microwave absorbers.

Key words: Urchin-like geometrical morphology, NiO/Ni@CNTs multicomponent, nanocomposites, Core@shell structure, Interface engineering, Microwave absorption