详细信息
Magnetic-Dielectric Complementary Fe-Co-Ni Alloy/Carbon Composites for High-Attenuation C-Band Microwave Absorption via Carbothermal Reduction of Solid-Solution Precursor ( SCI-EXPANDED收录 EI收录)
文献类型:期刊文献
英文题名:Magnetic-Dielectric Complementary Fe-Co-Ni Alloy/Carbon Composites for High-Attenuation C-Band Microwave Absorption via Carbothermal Reduction of Solid-Solution Precursor
作者:Su, Zhe[1];Yi, Shan[1];Zhang, Wanyu[1];Tian, Liying[1];Zhang, Yayun[1];Zhou, Shenghu[1];Niu, Bo[1];Long, Donghui[1]
机构:[1]East China Univ Sci & Technol, Sch Chem Engn, Shanghai Key Lab Multiphase Mat Chem Engn, Shanghai 200237, Peoples R China
年份:2023
卷号:9
期号:2
外文期刊名:ADVANCED ELECTRONIC MATERIALS
收录:;EI(收录号:20225113275231);WOS:【SCI-EXPANDED(收录号:WOS:000896797000001)】;
基金:Acknowledgements This work was supported by National Natural Science Foundation of China (Nos. 22078100, 52102098, and 22008073) and Fundamental Research Funds for the Central Universities (No. 222201718002).
语种:英文
外文关键词:carbothermal reduction; C-band microwave absorption; ferromagnetic alloys; gluconate solid-solution precursor
摘要:Ferromagnetic alloys/carbon composites with excellent electrical and magnetic properties are highly desirable as electromagnetic wave absorption materials, but achieving high-attenuation performance in C-band (4-8 GHz) remains a challenge. Herein, a direct carbothermal reduction of organic gluconate solid-solution precursor method is developed to synthesize ferromagnetic Fe-Co-Ni alloy/carbon composites, which realize high-attenuation electromagnetic wave absorption in C-band. By virtue of Fe, Co, and Ni elements homogeneously dispersing at the molecular level in the solid-solution precursor with the regulated mole ratio, serial FeCo2Ni/C, Co7Fe3/C, FeNi3/C, and Co3Ni/C composites can be deliberately prepared. First-principles calculations and off-axis electron holograms can clearly unravel that these Fe-Co-Ni alloys could perform as excellent dielectric-magnetic complementary loss units to trigger synergistic electronic dipole polarization oscillation, magnetic moment resonance, and magnetic coupling interaction. Meanwhile, the rich alloy-carbon interfaces and conductive carbon skeleton can facilitate delightful interfacial polarization and conductive loss. Combining these positive electromagnetic energy dissipation characteristics, FeCo2Ni/C with strengthened dipole polarization oscillation and outstanding impedance matching realizes an extremely high-attenuation absorption performance with a minimum reflection loss of -82.2 dB at 5.21 GHz. This work provides a feasible and flexible insight into producing magnetic-dielectric complementary Fe-Co-Ni alloys/carbon composites with various alloy compositions as excellent electromagnetic wave absorbers.
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