Mechanism of enhanced magnetization in CoFe2O4/La0.7Sr0.3MnO3 composites with different mass ratios
Autor: | Min Wang, Rui Rao, Xucai Kan, Ganhong Zheng, Yongqing Ma, Xian Zhang, Nixian Qian |
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Rok vydání: | 2020 |
Předmět: |
010302 applied physics
Materials science Process Chemistry and Technology Magnetization reversal 02 engineering and technology 021001 nanoscience & nanotechnology 01 natural sciences Surfaces Coatings and Films Electronic Optical and Magnetic Materials Ion Magnetic field Metal Paramagnetism Magnetization Ferromagnetism visual_art 0103 physical sciences Materials Chemistry Ceramics and Composites visual_art.visual_art_medium Antiferromagnetism Composite material 0210 nano-technology |
Zdroj: | Ceramics International. 46:14847-14856 |
ISSN: | 0272-8842 |
DOI: | 10.1016/j.ceramint.2020.03.010 |
Popis: | Magnetization enhancement is observed in the bi-magnetic systems including paramagnetic (PM)/antiferromagnetic (AFM), AFM/AFM, and ferromagnetic (FM)/AFM composites systems, and attributed to the effects of oxidation states of metallic ions on the interface exchange-coupling. With respect to the FM/FM system, in this study, the enhanced magnetization in hard CoFe2O4 (CFO)/soft La0.7Sr0.3MnO3 (LSMO) composites with different mass ratios of LSMO (Rs) was observed for the first time. The values of saturation magnetization (Ms) of CFO and LSMO at 10 K were found to be 111 and 113 emu/g, respectively. For the CFO/LSMO composites, Ms was below 111 emu/g for Rs ≤ 15% because the antiferromagnetically coupled CFO/LSMO system maintains the super-spin glass (SSG) state with the moment of CFO particles being randomly oriented. However, Ms increases to 133 and 127 emu/g for Rs = 18 and 21%, respectively, because the higher content of LSMO separates the CFO particles and destroys the SSG state, thus enabling the moment of CFO particles to rotate easily and align with the external magnetic field. Mechanism for the magnetization enhancement reported herein is different from the interface exchange-coupling mechanism, which enriches the understanding of the magnetization reversal in bi-magnetic systems and provides the experimental reference for the applications of bi-magnetic materials. |
Databáze: | OpenAIRE |
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