4.8 Article

Light and Flexible Composite Nanofibrous Membranes for High-Efficiency Electromagnetic Absorption in a Broad Frequency

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 10, 期 51, 页码 44561-44569

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.8b17514

关键词

magnetic and dielectric properties; electromagnetic wave absorption; carbon nanotubes; permittivity; permeability

资金

  1. National Natural Science Foundation of China [51673037, 51703022, 51873030]
  2. Shanghai Natural Science Foundation [18ZR1402100]
  3. Shanghai Committee of Science and Technology [15JC1400500]
  4. Shanghai Municipal Science and Technology Committee of Shanghai Outstanding Academic Leaders Plan [18XD1400200]
  5. Fundamental Research Funds for the Central Universities [16D310105]
  6. DHU Distinguished Young Professor Program [LZB2017002]
  7. State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Donghua University [LK1712]

向作者/读者索取更多资源

With the fast advancement of up-to-date communication technologies, electromagnetic wave (EMW) absorption materials are widely required for various applications. However, it is still a big challenge to produce lightweight, flexible, and high-efficiency EMW absorption materials in a broad-ranging frequency. Herein, we designed to fabricate the magnetic and dielectric nanofibrous membranes which can be effectively used as EMW absorption materials by facile electrospinning process. The as fabricated composite carbon nanofibers (CNFs), which combined the components of nickel, cobalt antioxidant nanoparticles, and carbon nanotubes, exhibited outstanding magnetic and dielectric properties and strong absorption ability in a wide frequency range. These nanoparticles encapsulated in CNFs are extremely beneficial to the electrical conductivity of the composites through decreasing the contact loss within the CNFs by formation of the metal-metal interfaces. Correspondingly, the R-L value of -46.60 dB was reached at 4.88 GHz frequency range with a layer thickness of 5.5 mm for these mechanically light and flexible membranes. The enhanced absorption performance (<-10 dB) in the wide frequency band (4.16-18 GHz) can be achieved by selecting a suitable thickness of the material. Results demonstrate that the permittivity and permeability of developed samples have been largely improved because of the integrated interaction of all introduced components in the structure. The composite membranes are a promising candidate for scalable, lightweight, and high-performance EMW absorption materials in the frequency range from C band to Ku band (4-18 GHz).

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