Preparation of MIL-88(Fe)@Fe 2 O 3 @FeSiCr double core-shell-structural composites and their wave-absorbing properties.
Wenmiao ZhangHongzhang DuLei WangSajjad Ur RehmanShuqi ShenWeiwei DongYifeng HuHaiping ZouTongxiang LiangPublished in: Physical chemistry chemical physics : PCCP (2023)
To tackle the aggravating electromagnetic wave (EMW) pollution issues, high-efficiency EMW absorption materials are being urgently explored. The FeSiCr soft magnetic alloy is one of the more widely used and well-received iron-based soft magnetic alloy materials with high permeability; however, the development of high-performance FeSiCr alloy wave-absorbing materials is still a major challenge. In this study, double core-shell-structured composites of MIL-88(Fe)@Fe 2 O 3 @FeSiCr were successfully prepared by the oxidative heat treatment of the flaky FeSiCr obtained after ball milling and then in situ composited with MIL-88(Fe). The heterogeneous interfacial composition and microstructure were regulated to balance the microwave-loss capability and impedance matching of the material, and an enhancement of the composite absorbing performance was achieved. The composite material had a reflection-loss minimization (RL min ) of -72.65 dB, corresponding to a frequency of 6.61 GHz, with an absorbing coating thickness of 2.97 mm and an effective absorbing bandwidth (RL ≤ -10 dB) of 2.38 GHz (5.42-7.80 GHz). The results of this study provide useful ideas for wave-absorbing materials by applying high permeability soft magnetic alloy micropowders.
Keyphrases
- metal organic framework
- molecularly imprinted
- solid phase extraction
- high efficiency
- risk assessment
- heavy metals
- reduced graphene oxide
- transcription factor
- white matter
- computed tomography
- visible light
- high resolution
- gold nanoparticles
- molecular dynamics simulations
- human health
- optical coherence tomography
- radiofrequency ablation
- liquid chromatography
- smoking cessation
- dual energy