4.8 Article

Defect and interface engineering in core@shell structure hollow carbon@MoS2 nanocomposites for boosted microwave absorption performance

Journal

NANO RESEARCH
Volume 15, Issue 9, Pages 7778-7787

Publisher

TSINGHUA UNIV PRESS
DOI: 10.1007/s12274-022-4625-7

Keywords

core@shell structure; hollow carbon shells; hollow carbon@S-2; defect and interface engineering; improved microwave absorption properties

Funding

  1. Fund of Fok Ying Tung Education Foundation
  2. Natural Science Foundation of Guizhou province [2017-1034]
  3. Major Research Project of innovative Group of Guizhou province [2018-013]
  4. Natural National Science Foundation of China [11604060, 52101010, 11964006]
  5. Foundation of the National Key Project for Basic Research [2012CB932304]

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This study reports a method to improve the microwave absorption properties (MAPs) by adjusting the defect level and interface effects of hollow carbon shells and hollow carbon@MoS2.
Defect and interface engineering are efficient approaches to adjust the physical and chemical properties of nanomaterials. In order to effectively utilize these strategies for the improvement of microwave absorption properties (MAPs), in this study, we reported the synthesis of hollow carbon shells and hollow carbon@MoS2 nanocomposites by the template-etching and template etching-hydrothermal methods, respectively. The obtained results indicated that the degree of defect for hollow carbon shells and hollow carbon@MoS2 could be modulated by the thickness of hollow carbon shell, which effectively fulfilled the optimization of electromagnetic parameters and improvement of MAPs. Furthermore, the microstructure investigations revealed that the precursor of hollow carbon shells was encapsulated by the sheet-like MoS2 in high efficiency. And the introduction of MoS2 nanosheets acting as the shell effectively improved the interfacial effects and boosted the polarization loss capabilities, which resulted in the improvement of comprehensive MAPs. The elaborately designed hollow carbon@MoS2 samples displayed very outstanding MAPs including strong absorption capabilities, broad absorption bandwidth, and thin matching thicknesses. Therefore, this work provided a viable strategy to improve the MAPs of microwave absorbers by taking full advantage of their defect and interface engineering.

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