4.7 Article

Co0.2Fe2.8O4/C composite nanofibers with designable 3D hierarchical architecture for high-performance electromagnetic wave absorption

期刊

CERAMICS INTERNATIONAL
卷 47, 期 16, 页码 23275-23284

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.ceramint.2021.05.040

关键词

Carbon nanofibers; Ferrite; Microstructures; Electromagnetic wave absorption; Electrospinning

资金

  1. Central Government guides local science and Technology Development Fund of Science and Technology Department of Jilin Province [202002007JC]
  2. '13th Five-Year' Science and Technology Program of Education Department of Jilin Province [JJKH20200249KJ]
  3. Science and Technology Innovation Development Program of Jilin City [20190104129]

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High-performance electromagnetic wave absorption can be achieved through architecture design of nanomaterials. The synthesized two layer hybrid Co0.2Fe2.8O4/carbon nanofibers with porous three-dimensional hierarchical structure showed excellent absorbing capability, with a maximum reflection loss of -43.45 dB at 11.1 GHz and an effective bandwidth of 5.85 GHz.
High-performance electromagnetic (EM) wave absorption property could be achieved by architecture design of nanomaterials. Herein, two layer hybrid Co0.2Fe2.8O4/carbon nanofibers with porous three-dimensional (3D) hierarchical structure were synthesized successfully through facile electrospinning, carbonization and mild chemical treatment. The Co0.2Fe2.8O4 particles grew along the carbon nanofibers, forming the enhanced heterogeneous interfaces and high specific areas. As expected, the EM wave absorbent showed an excellent absorbing capability. The composites achieved a maximum reflection loss (RL) of -43.45 dB at 11.1 GHz with thickness of 3.0 mm. More importantly, the effective bandwidth (RL <= -10dB) was 5.85 GHz, covering 30% of the entire measured bandwidth. The absorption intensity and bandwidth were superior to other typical CoFebased composites. The intrinsic mechanism of the absorption revealed that the polarization losses, magnetic losses, magnetic natural resonance and exchanged resonance losses contributed to the high-performance microwave absorption. Moreover, good impedance matching and complex transmission paths that generated from unique porous network also played an important role. This study is expected to guide future exploration on designing and synthesizing high performance EM wave absorbents.

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