In-situ deposition and comparative study of electromagnetic absorption performance of MXene (Ti3C2Tx)@nano-Fe1Co0.8Ni1 composites with different compositions
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作者:
Hong Li
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机构:
Beijing Institute of Technology,School of Materials Science & EngineeringBeijing Institute of Technology,School of Materials Science & Engineering
Hong Li
[1
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Hongyang Li
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Beijing Institute of Technology,School of Materials Science & EngineeringBeijing Institute of Technology,School of Materials Science & Engineering
Hongyang Li
[1
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Zhenfeng Shen
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机构:
Shanghai Aerospace Control Technology Institute,undefinedBeijing Institute of Technology,School of Materials Science & Engineering
Zhenfeng Shen
[2
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Shentao Zeng
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机构:
Shanghai Aerospace Control Technology Institute,undefinedBeijing Institute of Technology,School of Materials Science & Engineering
Shentao Zeng
[2
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Feng Yang
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机构:
Beijing Institute of Technology,School of Materials Science & EngineeringBeijing Institute of Technology,School of Materials Science & Engineering
Feng Yang
[1
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Qing Cai
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Beijing Institute of Technology,School of Materials Science & EngineeringBeijing Institute of Technology,School of Materials Science & Engineering
Qing Cai
[1
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Wenqi Xu
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Beijing Institute of Technology,School of Materials Science & EngineeringBeijing Institute of Technology,School of Materials Science & Engineering
Wenqi Xu
[1
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Ran Wang
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Beijing Institute of Technology,School of Materials Science & EngineeringBeijing Institute of Technology,School of Materials Science & Engineering
Ran Wang
[1
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Cui Luo
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机构:
Shanghai Aerospace Control Technology Institute,undefinedBeijing Institute of Technology,School of Materials Science & Engineering
Cui Luo
[2
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Ying Liu
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机构:
Beijing Institute of Technology,School of Materials Science & EngineeringBeijing Institute of Technology,School of Materials Science & Engineering
Ying Liu
[1
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机构:
[1] Beijing Institute of Technology,School of Materials Science & Engineering
[2] Shanghai Aerospace Control Technology Institute,undefined
来源:
International Journal of Minerals, Metallurgy and Materials
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2025年
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32卷
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5期
Three sets of MXene (Ti3C2Tx)@nano-Fe1Co0.8Ni1 composites with 15, 45, and 90 mg MXene were prepared by in-situ liquid-phase deposition to effectively investigate the impact of the relationship between MXene (Ti3C2Tx) and nano-Fe1Co0.8Ni1 magnetic particles on the electromagnetic absorption properties of the composites. The microstructure, static magnetic properties, and electromagnetic absorption performance of these composites were studied. Results indicate that the MXene@nano-Fe1Co0.8Ni1 composites were primarily composed of face-centered cubic crystal structure particles and MXene, with spherical Fe1Co0.8Ni1 particles uniformly distributed on the surface of the multilayered MXene. The alloy particles had an average particle size of approximately 100 nm and exhibited good dispersion without noticeable particle aggregation. With the increase in MXene content, the specific saturation magnetic and coercivity of the composite initially decreased and then increased, displaying typical soft magnetic properties. Compared with those of the Fe1Co0.8Ni1 magnetic alloy particles alone, MXene addition caused an increasing trend in the real and imaginary parts of the dielectric constant of the composite. Meanwhile, the real and imaginary parts of the magnetic permeability exhibit decreasing trend. With the increase in MXene addition, the material attenuation constant increased and the impedance matching decreased. The minimum reflection loss increased, and the maximum effective absorption bandwidth decreased. When the MXene addition was 90 mg, the composite exhibited a minimum reflection loss of −46.9 dB with a sample thickness of 1.1 mm and a maximum effective absorption bandwidth of 3.60 GHz with a sample thickness of 1.0 mm. The effective absorption bandwidth of the composites and their corresponding thicknesses showed a decreasing trend with the increase in MXene addition, reducing by 50% from 1.5 mm without MXene addition to 1 mm with 90 mg of MXene addition.