Development of Experimental Device for Inductive Heating of Magnetic Nanoparticles

IF 2.7 3区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY Measurement Science and Technology Pub Date : 2024-01-10 DOI:10.1088/1361-6501/ad1d49
Vinicius Morgan, Amadeu Sum, Ning Wu, A. Dante, Ângelo Marcio de Souza Gomes, Luciana Spinelli, Fernando Gomes de Souza Jr, R. Allil, M. M. Werneck
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Abstract

Abstract Inductive heating using magnetic nanoparticles (MNPs) is a critical process extensively investigated for cancer treatment. However, the high cost of commercially available equipment hinders its accessibility for many research groups. In response, this paper introduces a simple electronic circuit with low-cost components, making it easy to construct even for non-electronic experts. Operating within the 50 – 200 kHz range, the circuit employs a parallel inductor-capacitor configuration, providing a maximum induction magnetic field of 23.6 mT. Ltspice software simulations align well with oscilloscope measurements. Using commercial iron oxide nanoparticles (~16 nm) in water suspensions (1-10 mg/mL), the device exhibited a concentration-dependent reduction in Specific Absorption Rate (SAR) values, consistent with literature findings. Hyperthermia temperatures were achieved in a few minutes at 52.5 kHz and 23.6 mT in the highest concentration. At 81.9 kHz and 21.5 mT, a temperature of 93°C was achieved after 22 minutes at 10 mg/mL. Additionally, the device demonstrated stable and safe operation over a 100-minute period, as validated by an ice-melting experiment. These results highlight the device's efficacy for hyperthermia experiments in both biological and non-biological systems, particularly advantageous for larger nanoparticles in a blocked state. The proposed device holds significant potential for contributing to hyperthermia studies across diverse research groups. Future development will focus on frequency adjustment without reducing the alternating magnetic field amplitude and a thorough investigation of field homogeneity inside the coils.
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磁性纳米粒子感应加热实验装置的开发
摘要 利用磁性纳米粒子(MNPs)进行感应加热是一种广泛研究的癌症治疗关键工艺。然而,市售设备的高昂成本阻碍了许多研究小组的使用。为此,本文介绍了一种使用低成本元件的简单电子电路,即使非电子专家也能轻松构建。该电路工作频率范围为 50 - 200 kHz,采用并联电感电容配置,可提供 23.6 mT 的最大感应磁场。Ltspice 软件的模拟结果与示波器的测量结果十分吻合。利用水悬浮液(1-10 毫克/毫升)中的商用氧化铁纳米粒子(约 16 纳米),该装置显示出比吸收率(SAR)值随浓度而降低,与文献研究结果一致。在 52.5 kHz 和 23.6 mT 的最高浓度下,几分钟内就能达到热疗温度。在 81.9 kHz 和 21.5 mT 下,10 mg/mL 的温度在 22 分钟后达到 93°C。此外,经融冰实验验证,该装置可在 100 分钟内稳定安全地运行。这些结果凸显了该装置在生物和非生物系统中进行热疗实验的功效,尤其是对处于阻滞状态的较大型纳米粒子更有优势。拟议的装置在促进不同研究小组的热疗研究方面具有巨大潜力。未来的发展重点是在不降低交变磁场振幅的情况下调整频率,并对线圈内部的磁场均匀性进行深入研究。
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来源期刊
Measurement Science and Technology
Measurement Science and Technology 工程技术-工程:综合
CiteScore
4.30
自引率
16.70%
发文量
656
审稿时长
4.9 months
期刊介绍: Measurement Science and Technology publishes articles on new measurement techniques and associated instrumentation. Papers that describe experiments must represent an advance in measurement science or measurement technique rather than the application of established experimental technique. Bearing in mind the multidisciplinary nature of the journal, authors must provide an introduction to their work that makes clear the novelty, significance, broader relevance of their work in a measurement context and relevance to the readership of Measurement Science and Technology. All submitted articles should contain consideration of the uncertainty, precision and/or accuracy of the measurements presented. Subject coverage includes the theory, practice and application of measurement in physics, chemistry, engineering and the environmental and life sciences from inception to commercial exploitation. Publications in the journal should emphasize the novelty of reported methods, characterize them and demonstrate their performance using examples or applications.
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