一种采用共振激励线圈自动频率开关的交流磁强计,用于磁性纳米颗粒的表征

M. M. Saari, Mohd Aufa Hadi Putera Zaini, H. Ahmad, Nurul Akmal Che Lah
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引用次数: 5

摘要

提出了一种采用谐振励磁线圈的交流磁强计,用于磁性纳米颗粒的表征。为了减少测量时间和人为误差,设计了一种自动谐振频率开关励磁线圈电路。制作了由13个不同电容值组成的网络电容,并利用继电器模块和微控制器进行控制。励磁线圈的谐振电路谐振高达81.36 kHz,以降低电流放大器观察到的阻抗。对谐振励磁线圈的阻抗进行了评价,以评价谐振技术的有效性。一阶差分线圈用于检测样品的磁化强度,并测量其对磁矩和频率的灵敏度。利用开发的系统,我们测量了多核氧化铁纳米颗粒溶液的复合磁化强度,并估计了其水动力尺寸。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An AC Magnetometer using Automatic Frequency Switching of a Resonant Excitation Coil for Magnetic Nanoparticles Characterization
An AC magnetometer using a resonant excitation coil is presented for magnetic nanoparticles characterization. An automatic resonant frequency switching of the excitation coil circuit is developed to reduce the measurement time and human contributed errors. A network capacitor consists of 13 different capacitance values is fabricated and controlled by using a relay module and a microcontroller. The resonant circuit of the excitation coil is resonated up to 81.36 kHz to reduce its impedance observed by a current amplifier. The impedance of the resonant excitation coil is evaluated to access the effectiveness of the resonant technique. A first-order differential coil is used to sense the magnetization from a sample and its sensitivity with respect to magnetic moment and frequency is measured. Using the developed system, we measure the complex magnetization of a multi-core iron oxide nanoparticles solution and estimated its hydrodynamic size.
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