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Core-shell structured nanocomposites formed by silicon coated carbon nanotubes with anti-oxidation and electromagnetic wave absorption
- Source :
- Journal of Colloid and Interface Science. 607:881-889
- Publication Year :
- 2022
- Publisher :
- Elsevier BV, 2022.
-
Abstract
- The silicon coated Carbon nanotubes (CNTs) nanocomposite (CNTs@Si) with a shell structure was successfully synthesized by a simple chemical vapor deposition (CVD) method. In this work, the CNTs@Si is not only introduced as a structural material providing oxidation performance, but also as an extremely effective electromagnetic wave (EMW) absorption nanocomposite. Dielectric characteristics EMW absorption properties within the frequency range of 2-18 GHz of CNTs@Si were studied, and the oxidation resistance of CNTs@Si was characterized. Due to the dense space conductive network formed by CNTs, the EMW absorbing properties of CNTs@Si nanocomposite features excellent electromagnetic wave absorption capacity at a filling amount of 1%. The maximum reflection loss (RL) reaches -61.57 dB at the thickness of 1.8 mm, and a wide effective absorption bandwidth (EAB, RL -10 dB) of 2.88 GHz is achieved. The obtained CNTs@Si core-shell nanocomposites exhibit excellent antioxidant performance and absorbing performance due to silicon bridging. Efficient electromagnetic wave absorption and excellent oxidation resistance of CNTs@Si can be regarded as a brand-new competitive candidate for EMW absorption materials in harsh environment.
- Subjects :
- Nanocomposite
Materials science
Silicon
Reflection loss
chemistry.chemical_element
Carbon nanotube
Dielectric
Chemical vapor deposition
Electromagnetic radiation
Surfaces, Coatings and Films
Electronic, Optical and Magnetic Materials
law.invention
Biomaterials
Colloid and Surface Chemistry
chemistry
law
Composite material
Absorption (electromagnetic radiation)
Subjects
Details
- ISSN :
- 00219797
- Volume :
- 607
- Database :
- OpenAIRE
- Journal :
- Journal of Colloid and Interface Science
- Accession number :
- edsair.doi.dedup.....549ab618458b419dc45396578b4aa50e