首页> 外文期刊>Journal of Electronic Materials >Computer Simulations of Contributions of N,el and Brown Relaxation to Specific Loss Power of Magnetic Fluids in Hyperthermia
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Computer Simulations of Contributions of N,el and Brown Relaxation to Specific Loss Power of Magnetic Fluids in Hyperthermia

机译:N,El和Brown South的贡献的计算机模拟到热疗中磁流体的特定损失功率

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摘要

In this study, the degree of the contribution of particular relaxation losses to the specific loss power are calculated for a number of magnetic fluids, including Fe3O4, CoFe2O4, MnFe2O4, FeCo, FePt and La0.7Sr0.3MnO3 nanoparticles in various viscosities. We found that the specific loss of every fluid studied increases linearly with particle saturation magnetization. The competition between N,el and Brownian relaxation contributions gives rise to a peak at a critical diameter in the plot of specific loss power versus diameter. The critical diameter does not change with saturation magnetization but monotonically decreases with increasing magnetic anisotropy. If particle diameter is smaller than 6-11 nm, the maximum loss power tends to diminish and the heating effect to switch off. According to how the materials respond to viscosity change, the hyperthermia materials can be classified into two groups. One is hard nanoparticles with high anisotropy of which the critical diameter decreases with viscosity and the specific loss power versus saturation magnetization rate decreases strongly. The other is soft nanoparticles with low anisotropy of which the properties are insensitive to the viscosity of the fluid. We discuss our simulated results in relation to recent experimental findings.
机译:在该研究中,针对许多磁性流体计算特定弛豫损失对特定损耗功率的贡献程度,包括Fe3O4,CoFe2O4,MnFe 2 O 4,FECO,缩合和LA0.7SR0.3MNO3纳米颗粒在各种粘度。我们发现研究了每个流体的具体损失随着颗粒饱和磁化强度线性地增加。 N,EL和Brownian松弛贡献之间的竞争在特定损耗功率与直径的曲线图中产生了临界直径的峰值。临界直径不会随饱和磁化而改变,但随着磁各向异性的增加而单调地降低。如果粒径小于6-11nm,则最大损耗功率趋于减小和截止的加热效果。根据材料如何应对粘度变化,热疗材料可以分为两组。一种是具有高各向异性的硬纳米颗粒,其中临界直径随着粘度降低,比损耗功率与饱和磁化强度率强烈降低。另一个是具有低各向异性的软纳米颗粒,其特性对流体的粘度不敏感。我们讨论了与最近的实验结果相关的模拟结果。

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