<p>The development of electromagnetic wave absorbing materials with wideband absorption and thin thickness confronts huge challenges in addressing the aggravating problem of electromagnetic pollution. Herein, hollow core–shell Fe<sub>3</sub>O<sub>4</sub>@MoS<sub>2</sub> microspheres with controllable interior and tunable shell are constructed to precisely regulate the electromagnetic wave attenuation. The results demonstrate that hollow Fe<sub>3</sub>O<sub>4</sub> microspheres exhibit strong absorption in C–X bands owing to their strong ferromagnetic resonance. By structural regulation, hollow core–shell Fe<sub>3</sub>O<sub>4</sub>@MoS<sub>2</sub> microspheres not only ensure superior electromagnetic wave absorption intensity at thin thickness, but also endow wideband absorption. Benefiting from the cooperative merits of manipulated Fe<sub>3</sub>O<sub>4</sub> interior and controllable MoS<sub>2</sub> shells, the as-synthesized microspheres display obvious interface polarization, defect/dipole polarization, and multiple scatterings, thereby resulting in ameliorated impedance matching and outstanding attenuation performance. Especially for Fe<sub>3</sub>O<sub>4</sub>@MoS<sub>2</sub>-2, the minimum reflection loss is − 69.01&#xa0;dB at 2.66&#xa0;mm and the effective absorption bandwidth reaches 8.40&#xa0;GHz when the thickness is 3.0&#xa0;mm. This study systematically investigates the balance relationships between core–shell structures and absorption attenuation, and simultaneously provides a referable strategy to modulate the electromagnetic wave absorption by structural optimization.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Hollow engineering of core–shell Fe3O4@MoS2 microspheres with controllable interior toward optimized electromagnetic attenuation

  • Na Chen,
  • Ru-Yu Wang,
  • Xue-Feng Pan,
  • Bing-Bing Han,
  • Jia-Xin Li,
  • Zhen-Jie Guan,
  • Jian-Tang Jiang,
  • Kang-Jun Wang,
  • Xiao-Guang San,
  • Panbo Liu

摘要

The development of electromagnetic wave absorbing materials with wideband absorption and thin thickness confronts huge challenges in addressing the aggravating problem of electromagnetic pollution. Herein, hollow core–shell Fe3O4@MoS2 microspheres with controllable interior and tunable shell are constructed to precisely regulate the electromagnetic wave attenuation. The results demonstrate that hollow Fe3O4 microspheres exhibit strong absorption in C–X bands owing to their strong ferromagnetic resonance. By structural regulation, hollow core–shell Fe3O4@MoS2 microspheres not only ensure superior electromagnetic wave absorption intensity at thin thickness, but also endow wideband absorption. Benefiting from the cooperative merits of manipulated Fe3O4 interior and controllable MoS2 shells, the as-synthesized microspheres display obvious interface polarization, defect/dipole polarization, and multiple scatterings, thereby resulting in ameliorated impedance matching and outstanding attenuation performance. Especially for Fe3O4@MoS2-2, the minimum reflection loss is − 69.01 dB at 2.66 mm and the effective absorption bandwidth reaches 8.40 GHz when the thickness is 3.0 mm. This study systematically investigates the balance relationships between core–shell structures and absorption attenuation, and simultaneously provides a referable strategy to modulate the electromagnetic wave absorption by structural optimization.