| Literature DB >> 35987921 |
Bintong Yang1, Jiefeng Fang1, Chunyang Xu1, Hui Cao2, Ruixuan Zhang1, Biao Zhao1, Mengqiu Huang1, Xiangyu Wang1, Hualiang Lv3, Renchao Che4,5.
Abstract
Rational designing of one-dimensional (1D) magnetic alloy to facilitate electromagnetic (EM) wave attenuation capability in low-frequency (2-6 GHz) microwave absorption field is highly desired but remains a significant challenge. In this study, a composite EM wave absorber made of a FeCoNi medium-entropy alloy embedded in a 1D carbon matrix framework is rationally designed through an improved electrospinning method. The 1D-shaped FeCoNi alloy embedded composite demonstrates the high-density and continuous magnetic network using off-axis electronic holography technique, indicating the excellent magnetic loss ability under an external EM field. Then, the in-depth analysis shows that many factors, including 1D anisotropy and intrinsic physical features of the magnetic medium-entropy alloy, primarily contribute to the enhanced EM wave absorption performance. Therefore, the fabricated EM wave absorber shows an increasing effective absorption band of 1.3 GHz in the low-frequency electromagnetic field at an ultrathin thickness of 2 mm. Thus, this study opens up a new method for the design and preparation of high-performance 1D magnetic EM absorbers.Entities:
Keywords: Improved electrospinning; Lower-frequency electromagnetic wave absorption; Medium-entropy magnetic alloy; Off-axis electronic holography technique; One-dimension
Year: 2022 PMID: 35987921 PMCID: PMC9392832 DOI: 10.1007/s40820-022-00920-7
Source DB: PubMed Journal: Nanomicro Lett ISSN: 2150-5551
Fig. 1Schematic illustration of the synthetic strategy for FeCoNi/CF composites
Fig. 2a SEM, EDS mapping and b TEM images of FeCoNi NP. c, d SEM, e TEM, and f EDS mapping images of FeCoNi/CF-1. g XRD Rietveld spectrum of the FeCoNi/CF-1. h, i HRTEM images of FeCoNi/CF-1
Fig. 33D absorption coefficient value mapping of a FeCoNi/CF-1 and b CF as a function of thickness ranging 1–5 mm. c The absorption coefficient of FeCoNi/CF-1 and CF at a thickness of 2 mm. d Low-frequency electromagnetic absorption performance of common absorbers, as concluded according to previous research. e Hysteresis loops and permeability of FeCoNi/CF-1. f Permeability comparison of related magnetic materials, as concluded according to previous research
Fig. 4a Micromagnetic simulation of 1D axially distributed FeCoNi NP (The external magnetic field frequency is 6 GHz, and the diameter of the microsphere is 200 nm). b Electron holograms of FeCoNi/CF-1 and corresponding stray magnetic field distribution. c TEM image of FeCoNi/CF-1 and the corresponding stray magnetic field distribution with recombination of different regions. d Permittivity of FeCoNi/CF-1 and CF. e Raman spectra of FeCoNi/CF-1 and CF
Fig. 5a SEM and b TEM images of FeCoNi/CF-2. c The absorption coefficient of FeCoNi/CF-2, FeCoNi/CF-3 and FeCoNi NP at thickness of 2 mm. d SEM and e TEM images of FeCoNi/CF-3. f Permeability of FeCoNi/CF-2, FeCoNi/CF-3 and FeCoNi NP
Fig. 6a μ′ and b μ′′ of FeCoNi NP of different Fe, Co, Ni ratios. c The permeability and magnetic loss values of FeCoNi NP with different Ni atom ratios under 6 GHz. d Micromagnetic simulation of FeCoNi spheres with cyclical variation in different Fe/Co/Ni ratios. The external magnetic field frequency is 6 GHz, and the diameter of the microsphere is 200 nm