材料科学
形态学(生物学)
结晶学
化学
遗传学
生物
作者
Jun Bao Wang,Wei Wei Xiao,Dian Guo,Lu Wang,Yunyun Liu,Xiao Zhong Tian,Lan Ju Liang,Ju Gao
出处
期刊:Physica Scripta
[IOP Publishing]
日期:2024-09-19
卷期号:99 (10): 1059b8-1059b8
被引量:1
标识
DOI:10.1088/1402-4896/ad7b84
摘要
Abstract A bi-magnetic phase (Fe 65 Co 35 ) x @(Ni 0.5 Zn 0.5 Fe 2 O 4 ) 100–x nanocomposite thin film was created by combining Fe 65 Co 35 alloy nanoclusters produced through plasma gas condensation with Ni 0.5 Zn 0.5 Fe 2 O 4 thin film prepared via RF magnetron sputtering. The study revealed that the Fe 65 Co 35 alloy nanoclusters, with an average particle size of approximately 6 nm, are surrounded by the amorphous ferrite phase, forming a granular ‘core–shell’ structure. As the proportion of Fe 65 Co 35 alloy nanoclusters increased from 5.9 wt% to 35.4 wt%, the grain size of the nanocomposite thin films decreased from 24 nm to 10.4 nm. Magnetic analysis demonstrated that the nanocomposite thin films displayed soft magnetic properties at room temperature. With an increase in Fe 65 Co 35 content, the saturated magnetization of the nanocomposite thin films escalated from 68 emu cm −3 to 214 emu/cm 3 , significantly surpassing that of the corresponding NiZn ferrite films (∼17 emu/cm 3 ). The fluctuation of coercivity is intricately linked to the grain size of the nanocomposite thin films, and at 24.5 wt% of Fe 65 Co 35 alloy nanoclusters, the coercivity is minimized to 14 Oe. The ferromagnetic resonance spectra of the nanocomposite films exhibited some asymmetric broadening and shift. As the Fe 65 Co 35 content increased, the resonance field initially decreased and then rose, while the resonance linewidth gradually decreased.
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