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首页> 外文期刊>Journal of magnetism and magnetic materials >Effects of size and anisotropy of magnetic nanoparticles associated with dynamics of easy axis for magnetic particle imaging
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Effects of size and anisotropy of magnetic nanoparticles associated with dynamics of easy axis for magnetic particle imaging

机译:磁性粒子的尺寸和各向异性与易轴动力学相关的磁性粒子成像的影响

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The structure of magnetic nanoparticles affects the signal intensity and resolution of magnetic particle imaging, which is derived from the harmonics caused by the nonlinear response of magnetization. To understand the key effects of particle structures on the magnetization harmonics, the dependence of the harmonics on the size and anisotropy of different structures was investigated. We measured the harmonic signals with respect to different magnetic nanoparticle structures by applying an AC field with a gradient field for magnetic particle imaging, which was compared with the numerically simulated magnetization properties. In addition, the dynamics of the easy axis of magnetic nanoparticles in the liquid state were evaluated. The difference between the harmonics in the solid and liquid states indicates the effective core size and anisotropy due to particle structures such as single core, chainlike, and multicore particles. In the case of the chainlike structure, the difference between the harmonics in the solid and liquid states was larger than other structures. In the numerical simulations, core diameters and anisotropy constants were considered as the effective values, such as the increase in anisotropy in the chainlike structure due to dipole interaction. The multicore particles showed high harmonics owing to their large effective core diameters. The superparamagnetic regime in the multicore structure despite the large effective core diameter was derived from the small effective anisotropy. The effective core size and the effective anisotropy of each particle structure and their impacts on the harmonic signals were revealed.
机译:磁性纳米粒子的结构影响磁性粒子成像的信号强度和分辨率,这是由磁化非线性响应引起的谐波产生的。为了了解粒子结构对磁化谐波的关键影响,研究了谐波对不同结构尺寸和各向异性的依赖性。我们通过将交流场与梯度场应用于磁性粒子成像,针对不同的磁性纳米粒子结构测量了谐波信号,并将其与数值模拟的磁化特性进行了比较。另外,评估了液态磁性纳米粒子的易轴的动力学。固态和液态谐波之间的差异表示有效的核尺寸和各向异性,这是由于粒子结构(例如单核,链状和多核粒子)引起的。在链状结构的情况下,固态和液态的谐波之间的差异大于其他结构。在数值模拟中,芯直径和各向异性常数被认为是有效值,例如由于偶极相互作用而使链状结构的各向异性增加。多核粒子由于有效核直径较大而显示出高谐波。尽管有效磁芯直径较大,但多磁芯结构中的超顺磁机制是由较小的有效各向异性引起的。揭示了每个粒子结构的有效核尺寸和有效各向异性以及它们对谐波信号的影响。

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