OPTIMIZING HEATING EFFICIENCY OF HYPERTHERMIA: SPECIFIC LOSS POWER OF MAGNETIC SPHERE COMPOSED OF SUPERPARAMAGNETIC NANOPARTICLES

M. Halgamuge, Ta Song
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引用次数: 4

Abstract

Magnetic nanoparticle (MNP) based thermal therapies have shown importance in clinical applications. However, it lacks a compromise between its robustness and limitations. We developed theoretical strategies to enhance the heating efficiency, which could be utilized in thermal therapies and calculated parameter dependence for superparamagnetic MNPs (approximative ellipsoid-shaped) within a sphere-shaped ball. Then we calculated specific loss power (SLP) for magnetic particles in a magnetic ball. The dependency of features of the nanoparticles (such as mean particle size, a number of particles, frequency and amplitude of the exposed field, relaxation time, and volume gap between particles and a sphere-shaped ball) on the SLP or the heating effect in superparamagnetic MNPs was analyzed. In this study, optimal parameter values were calculated using Kneedle Algorithm as the optimization technique to represent the accurate heating efficiency. The influence of a number of particles in a sphere-shaped ball shows that SLP of magnetic particles increases with the increasing number of particles (N); however, after N = 10 particles, the SLP increment is insignificant. The most remarkable result arising from this analysis is that when particles are closer together (less volume gap of a sphere-shaped ball), high SLP is found for the same number of particles. This model also predicts that the frequency dependency on the SLP is negligible when the frequency is higher than 10 kHz depending on the size of a sphere-shaped ball and nanoparticle parameters. This analysis has shown that the SLP of MNPs, in a sphere-shaped ball, strongly depends on magnetic parameters and properties of the particles. In brief, we have demonstrated, for the first time, impact on SLP of the accumulation of ellipsoid-shaped superparamagnetic nanoparticles into a sphere-shaped ball. This finding has essential suggestions for developing links between heating properties with loose aggregate and dense aggregate scenarios in the superparamagnetic condition.
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优化热疗的加热效率:超顺磁性纳米颗粒组成的磁球的比损失功率
基于磁性纳米粒子(MNP)的热疗法在临床应用中显示出重要的意义。然而,它缺乏健壮性和局限性之间的折衷。我们开发了提高加热效率的理论策略,可用于球形球内超顺磁MNPs(近似椭球形)的热治疗和计算参数依赖性。然后计算了磁球中磁粒子的比损耗功率(SLP)。分析了纳米粒子的平均粒径、粒子数、暴露场的频率和振幅、弛豫时间、粒子与球形球之间的体积间隙等特征对超顺磁MNPs中SLP或热效应的影响。在本研究中,采用Kneedle算法作为优化技术计算最优参数值,以表示精确的加热效率。球形球中粒子数的影响表明,磁性粒子的SLP随粒子数(N)的增加而增加;但在N = 10个粒子后,SLP增量不显著。通过分析得出的最显著的结果是,当粒子之间的距离更近时(球形球的体积间隙更小),相同数量的粒子具有较高的SLP。该模型还预测,当频率高于10 kHz时,取决于球形球的大小和纳米颗粒参数,频率对SLP的依赖性可以忽略不计。这一分析表明,在球形球中,MNPs的SLP强烈依赖于粒子的磁性参数和性质。简而言之,我们首次证明了椭球形超顺磁性纳米颗粒堆积成球形球对SLP的影响。这一发现为在超顺磁条件下松散骨料和致密骨料的加热性能之间建立联系提供了重要建议。
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来源期刊
Progress In Electromagnetics Research B
Progress In Electromagnetics Research B Engineering-Electrical and Electronic Engineering
CiteScore
2.70
自引率
0.00%
发文量
14
期刊介绍: Progress In Electromagnetics Research (PIER) B publishes peer-reviewed original, comprehensive and tutorial review articles on all aspects of electromagnetic theory and applications. It is a new journal in 2008, and freely available to all readers via the Internet. Manuscripts submitted to PIER B must not have been submitted simultaneously to other journals. Authors are solely responsible for the factual accuracy of their articles, and all articles are understood to have received clearance(s) for publication.
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