Magnetic particle spectroscopy of magnetite-polyethylene nanocomposite films: A novel sample for MPI tracer design

L. Bauer, M. Pablico-Lansigan, R. Deissler, M. Martens, R. Brown, A. Samia, M. Griswold
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引用次数: 4

Abstract

Several harmonic spectra are plotted in Figure 2. An important result is the comparison of free particles embedded in agar and films (Figure 2c). The particles embedded in the films are “frozen” in place, while those in agar, unless bound within the matrix, should still have some freedom to rotate. Particles in both should have identical Neel relaxation times, as that is dependent only on the structure of the iron core and not local environment, provided magnetic interactions can be excluded. A calculation of the Neel relaxation time yields values in the range of 0.12-171 microseconds (for crystal anisotropies in the range of 11-21kJ/m3). The Brownian relaxation time for the films is assumed to be infinite, such that relaxation is only possible through the Neel mechanism. However, the Brownian relaxation times for particles in agar are long enough that relaxation is also assumed to be dominated by the Neel mechanism. While Brownian relaxation may play a role in explaining the signal difference, it is likely due to magnetic interactions between neighboring particles that steepen the magnetization curve. Figure 2c demonstrates that a low interparticle distance generally results in a higher signal. In samples with high local concentrations (such as the films presented here, or samples that exhibit significant aggregation), the average distance between two particles is small enough that dipole-dipole interactions must be considered. Such interactions are one possible explanation for the performance of Feridex IV and Resovist.
磁铁矿-聚乙烯纳米复合膜的磁粒子光谱:一种用于MPI示踪剂设计的新样品
图2绘制了几个谐波谱。一个重要的结果是琼脂和薄膜中自由颗粒的比较(图2c)。嵌入薄膜中的粒子被“冻结”在原位,而琼脂中的粒子,除非被束缚在基质中,否则应该仍然有一些自由旋转的空间。两者中的粒子应该具有相同的尼尔弛豫时间,因为这只取决于铁芯的结构,而不是局部环境,前提是可以排除磁相互作用。计算得出的Neel弛豫时间范围为0.12-171微秒(晶体各向异性范围为11-21kJ/m3)。假定薄膜的布朗弛豫时间是无限的,因此只有通过尼尔机制才能实现弛豫。然而,琼脂中粒子的布朗弛豫时间足够长,因此松弛也被认为是由尼尔机制主导的。虽然布朗弛豫可能在解释信号差异方面发挥作用,但这可能是由于邻近粒子之间的磁相互作用使磁化曲线变陡。从图2c可以看出,粒子间距离越小,信号越高。在具有高局部浓度的样品中(如此处呈现的薄膜,或表现出显著聚集的样品),两个粒子之间的平均距离足够小,因此必须考虑偶极子-偶极子相互作用。这种相互作用是Feridex IV和Resovist表现的一个可能的解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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