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钴酸铁纳米粒子中的阳离子分布和自旋倾斜。

Cationic distribution and spin canting in CoFe2O4 nanoparticles.

机构信息

Dipartimento di Scienze Chimiche, Cittadella Universitaria di Monserrato, bivio per Sestu, 09042, Monserrato, Italy.

出版信息

J Phys Condens Matter. 2011 Oct 26;23(42):426004. doi: 10.1088/0953-8984/23/42/426004.

DOI:10.1088/0953-8984/23/42/426004
PMID:21983141
Abstract

CoFe(2)O(4) nanoparticles (D(NPD) ~6 nm), prepared by a thermal decomposition technique, have been investigated through the combined use of dc magnetization measurements, neutron diffraction, and (57)Fe Mössbauer spectrometry under high applied magnetic field. Despite the small particle size, the value of saturation magnetization at 300 K (M(s) ͠= 70 A m(2) kg(-1)) and at 5 K (M(s) ͠= 100 A m(2) kg(-1)) are rather close to the bulk values, making the samples prepared with this method attractive for biomedical applications. Neutron diffraction measurements indicate the typical ferrimagnetic structure of the ferrites, showing an inversion degree (γ(NPD) = 0.74) that is in very good agreement with cationic distribution established from low temperature (10 K) Mössbauer measurements in high magnetic field (γ(moss) = 0.76). In addition, the in-field Mössbauer spectrum shows the presence of a non-collinear spin structure in both A and B sublattices. The results allow us to explain the high value of saturation magnetization and provide a better insight into the complex interplay between cationic distribution and magnetic disorder in ferrimagnetic nanoparticles.

摘要

CoFe(2)O(4) 纳米粒子(D(NPD)~6nm),通过热分解技术制备,通过直流磁化测量、中子衍射和(57)Fe Mössbauer 光谱学在高磁场下进行了研究。尽管粒径较小,但在 300K(M(s) = 70A m(2)kg(-1))和 5K(M(s) = 100A m(2)kg(-1))下的饱和磁化强度值与体相值相当接近,使得用这种方法制备的样品在生物医学应用中很有吸引力。中子衍射测量表明了铁氧体的典型反铁磁结构,表现出的反转度(γ(NPD) = 0.74)与低温(10K)下高磁场中(γ(moss) = 0.76)Mössbauer 测量确定的阳离子分布非常吻合。此外,磁场中的 Mössbauer 谱显示 A 和 B 亚晶格中都存在非共线自旋结构。这些结果可以解释高饱和磁化强度值,并提供对铁磁纳米粒子中阳离子分布和磁无序之间复杂相互作用的更好理解。

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