E. B. Peixoto, L. F. S. Andrade, M. H. Carvalho, J. D. T. Santos, L. S. Silva, J. G. S. Duque
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引用次数: 0
摘要
本文报道了热分解生长的分散Fe \(_x\) Ni \(_{1-x}\) (x = 10,20,30,40和50)纳米合金的合成和磁性能。x射线衍射图表明,所有样品的大部分晶相都符合fcc晶体结构(空间群Fm3m)。磁化强度随磁场和温度的变化表明,Fe \(_x\) Ni \(_{1-x}\)具有超顺磁性,阻滞温度在10 K左右。然而,对于所有样品,可以观察到第二个非常宽的最大值,这可以归因于双峰纳米颗粒尺寸分布和/或Ni纳米颗粒在x = 10, 20和30的情况下生长的样品。最后,我们认为纳米合金的尺寸分布和/或相互作用效应应该在确定样品的磁性行为中发挥关键作用,一旦我们不能在宽温度范围内使用n (T)弛豫和Bean-Livingston方法拟合\(H_C\) (T)数据。
Synthesis and Magnetic Characterization of Dispersed Fe\(_x\)Ni\(_{100-x}\) (x = 10, 20, 30, 40, and 50) Nanoalloys Using the Thermal Decomposition Method
In this paper, we report on synthesis and magnetic properties of dispersed Fe\(_x\)Ni\(_{1-x}\) (x = 10, 20, 30, 40, and 50) nanoalloys grown by thermal decomposition. X-ray diffraction patterns show that the majority crystalline phase is consistent with a fcc crystal structure (space group Fm3m) for all samples. Magnetization as a function of magnetic field and temperature shows that Fe\(_x\)Ni\(_{1-x}\) are superparamagnetic with blocking temperatures around 10 K. However, for all samples, it is possible to observe a second very broad maximum, which can be ascribed to a bimodal nanoparticle size distribution and/or Ni nanoparticles for the case of samples grown with x = 10, 20, and 30. Finally, we argue that the nanoalloy size distribution and/or interaction effects should play a crucial role in determining the magnetic behavior of samples once we are not able to fit our \(H_C\)(T) data using the Néel relaxation and the Bean-Livingston approaches in a wide temperature range.
期刊介绍:
The Brazilian Journal of Physics is a peer-reviewed international journal published by the Brazilian Physical Society (SBF). The journal publishes new and original research results from all areas of physics, obtained in Brazil and from anywhere else in the world. Contents include theoretical, practical and experimental papers as well as high-quality review papers. Submissions should follow the generally accepted structure for journal articles with basic elements: title, abstract, introduction, results, conclusions, and references.