Ferroferric Oxide/Multiwalled Carbon Nanotube vs Polyaniline/Ferroferric Oxide/Multiwalled Carbon Nanotube Multiheterostructures for Highly Effective Microwave Absorption

Мультигетероструктуры «магнетит/многостенные углеродные нанотрубки» и «полианилин/магнетит/многостенные углеродные нанотрубки» для высокоэффективного поглощения микроволнового излучения
Mao‐Sheng Cao, Jian Yang, Wei‐Li Song, Deqing Zhang, Bo Wen, Haibo Jin, Zhi‐Ling Hou, Jie Yuan
2012-11-13

Fe3O4/MWCNT heterostructurescomplex permittivity and permeabilityelectromagnetic attenuationmicrowave absorptionpolyaniline-coated composites
Light-weight nanocomposites filled with carbon nanotubes (CNTs) are developed for their significant potentials in electromagnetic shielding and attenuation for wide applications in electronics, communication devices, and specific parts in aircrafts and vehicles. Specifically, the introduction of a second phase into/onto CNTs for achieving CNT-based heterostructures has been widely pursued due to the enhancement in either dielectric loss or magnetic loss. In this work, ferroferric oxide (Fe(3)O(4)) was selected as the phase in multiwalled carbon nanotube (MWCNT)-based composites for enhancing magnetic properties to obtain improved electromagnetic attenuation. A direct comparison between the two-phase heterostructures (Fe(3)O(4)/MWCNTs) and polyaniline (PANI) coated Fe(3)O(4)/MWCNTs, namely, three-phase heterostructures (PANI/Fe(3)O(4)/MWCNTs), was made to investigate the interface influences of Fe(3)O(4) and PANI on the complex permittivity and permeability separately. Compared to PANI/Fe(3)O(4)/MWCNTs, Fe(3)O(4)/MWCNTs exhibited enhanced magnetic properties coupled with increased dielectric properties. Interfaces between MWCNTs and heterostructures were found to play a role in the corresponding properties. The evaluation of microwave absorption of their wax composites was carried out, and the comparison between Fe(3)O(4)/MWCNTs and PANI/Fe(3)O(4)/MWCNTs with respect to highly efficient microwave absorption and effective absorption bandwidth was discussed.
1
Fe₃O₄ was incorporated into MWCNT-based composites to enhance magnetic properties and improve electromagnetic attenuation.
2
Fe₃O₄/MWCNT two-phase heterostructures exhibited stronger magnetic and dielectric properties than PANI/Fe₃O₄/MWCNT three-phase heterostructures.
3
Interfaces between MWCNTs and the heterostructured phases significantly influenced the composites’ complex permittivity and permeability.
4
PANI coating altered the electromagnetic response, while the uncoated Fe₃O₄/MWCNT architecture provided enhanced combined magnetic and dielectric performance.
5
The study directly compared wax composites containing Fe₃O₄/MWCNTs and PANI/Fe₃O₄/MWCNTs for highly efficient microwave absorption and effective absorption bandwidth.

Fe(3)O(4)/multiwalled carbon nanotube (MWCNT) and polyaniline-coated Fe(3)O(4)/MWCNT multiheterostructures, including their wax composites

The influence of Fe(3)O(4) and polyaniline interfaces on complex permittivity, permeability, magnetic and dielectric properties, and microwave absorption efficiency and bandwidth

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2012-11-13
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Mao‐Sheng Cao
Jian Yang
Wei‐Li Song
Deqing Zhang
Bo Wen
Haibo Jin
Zhi‐Ling Hou
Jie Yuan
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