| Literature DB >> 25007783 |
Tingkai Zhao1, Cuilin Hou1, Hongyan Zhang1, Ruoxing Zhu1, Shengfei She1, Jungao Wang1, Tiehu Li1, Zhifu Liu2, Bingqing Wei3.
Abstract
Amorphous carbon nanotubes (ACNTs) with diameters in the range of 7-50 nm were used as absorber materials for electromagnetic waves. The electromagnetic wave absorbing composite films were prepared by a dip-coating method using a uniform mixture of rare earth lanthanum nitrate doped ACNTs and polyvinyl chloride (PVC). The microstructures of ACNTs and ACNT/PVC composites were characterized using transmission electron microscope and X-ray diffraction, and their electromagnetic wave absorbing properties were measured using a vector-network analyzer. The experimental results indicated that the electromagnetic wave absorbing properties of ACNTs are superior to multi-walled CNTs, and greatly improved by doping 6 wt% lanthanum nitrate. The reflection loss (R) value of a lanthanum nitrate doped ACNT/PVC composite was -25.02 dB at 14.44 GHz, and the frequency bandwidth corresponding to the reflector loss at -10 dB was up to 5.8 GHz within the frequency range of 2-18 GHz.Entities:
Year: 2014 PMID: 25007783 PMCID: PMC4090627 DOI: 10.1038/srep05619
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1SEM image (a) and corresponding EDS spectrum (b) (unit: keV) of La(NO3)3-ACNTs.
Figure 2TEM images of MWCNTs (a), ACNTs (b)–(d), La(NO3)3-ACNTs (e)–(f), and EDX pattern (g).
Figure 3XRD patterns of MWCNTs, ACNTs, and La(NO3)3-ACNTs.
Figure 4Complex permittivity (ε′, ε") (a) and permeability (μ′, μ") (b) spectra of CNT/PVC composite films vs frequency.
Figure 5Dielectric loss tangent (tanδε) (a) and magnetic loss tangent (tanδμ) (b) of CNT/PVC composite films vs frequency.
Figure 6Reflection losses of MWCNT/PVC, ACNT/PVC, and La(NO3)3-ACNT/PVC composites.
Electromagnetic wave absorbing properties of CNT/PVC composite films
| Samples | Film thickness ( | Reflection loss (dB) | Frequency (GHz) | Frequency bandwidth (GHz) |
|---|---|---|---|---|
| MWCNTs | 2 | −10 | 11.32 | 0.2 |
| ACNTs | 2 | −13.20 | 12.96 | 3.3 |
| La(NO3)3-ACNTs | 2 | −25.02 | 14.44 | 5.8 |
Figure 7Schematics of the electromagnetic wave absorbing mechanism of ACNTs.