A Sensitive AC Magnetometer using A Resonant Excitation Coil for Magnetic Fluid Characterization in Nonlinear Magnetization Region

M. M. Saari, Nazatul Sharreena Suhaimi, N. A. C. Lah, K. Sakai
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引用次数: 4

Abstract

In order to tailor the magnetic nanoparticles (MNPs) properties for intended applications, it is crucial to unravelling their fundamental dynamics with respect to excitation magnetic field. In this work, we report on the development of a sensitive AC magnetometer using a resonant excitation coil for this purpose. The excitation coil fabricated from a Litz wire is connected to a capacitor network to reduce the impedance of the circuit efficiently. The high efficiency showed by the excitation coil enables investigation of MNP’s dynamics in the nonlinear magnetization region. We demonstrate the sensitivity of the developed system by measuring the harmonics distribution of multi-core iron oxide nanoparticles suspended in solutions with the iron concentration down to 300 ng/ml. We experimentally show that the first harmonic component is not entirely ‘transparent’ to the diamagnetic background of the carrier liquid compared to the higher harmonics. We also demonstrate the complex magnetization measurement of the iron oxide nanoparticles in solution and immobilized states from 3 Hz to 18 kHz. A highly sensitive exploration of MNPs’ dynamics can be expected using the developed AC magnetometer.
一种采用谐振励磁线圈进行非线性磁化区磁流体表征的灵敏交流磁强计
为了使磁性纳米颗粒(MNPs)的特性适合于预期的应用,揭示它们在激发磁场下的基本动力学是至关重要的。在这项工作中,我们报告了一种用于此目的的敏感交流磁强计的谐振励磁线圈的发展。将励磁线圈与电容网络连接,有效地降低了电路的阻抗。励磁线圈所表现出的高效率使得研究非线性磁化区的MNP动力学成为可能。我们通过测量悬浮在铁浓度低至300 ng/ml溶液中的多核氧化铁纳米颗粒的谐波分布来证明所开发的系统的灵敏度。我们通过实验证明,与高次谐波相比,一次谐波分量对载体液体的抗磁背景并不完全“透明”。我们还演示了氧化铁纳米颗粒在溶液和固定状态下从3 Hz到18 kHz的复杂磁化测量。使用开发的交流磁力计,可以期望对MNPs的动力学进行高度敏感的探索。
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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