首页> 外文期刊>International journal of hyperthermia: The official journal of European Society for Hyperthermic Oncology, North American Hyperthermia Group >Exploring the potential of the dynamic hysteresis loops via high field, high frequency and temperature adjustable AC magnetometer for magnetic hyperthermia characterization
【24h】

Exploring the potential of the dynamic hysteresis loops via high field, high frequency and temperature adjustable AC magnetometer for magnetic hyperthermia characterization

机译:通过高场,高频和温度可调AC磁力计探索动态滞后环的电位,用于磁体热疗表征

获取原文
           

摘要

Aim The Specific Absorption Rate (SAR) is the key parameter to optimize the effectiveness of magnetic nanoparticles in magnetic hyperthermia. AC magnetometry arises as a powerful technique to quantify the SAR by computing the hysteresis loops' area. However, currently available devices produce quite limited magnetic field intensities, below 45mT, which are often insufficient to obtain major hysteresis loops and so a more complete and understandable magneticcharacterization. This limitation leads to a lack of information concerning some basic properties, like the maximum attainable (SAR) as a function of particles' size and excitation frequencies, or the role of the mechanical rotation in liquid samples. Methods To fill this gap, we have developed a versatile high field AC magnetometer, capable of working at a wide range of magnetic hyperthermia frequencies (100 kHz – 1MHz) and up to field intensities of 90mT. Additionally, our device incorporates a variable temperature system for continuous measurements between 220 and 380 K. We have optimized the geometrical properties of the induction coil that maximize the generated magnetic field intensity. Results To illustrate the potency of our device, we present and model a series of measurements performed in liquid and frozen solutions of magnetic particles with sizes ranging from 16 to 29 nm. Conclusion We show that AC magnetometry becomes a very reliable technique to determine the effective anisotropy constant of single domains, to study the impact of the mechanical orientation in the SAR and to choose the optimal excitation parameters to maximize heating production under human safety limits.
机译:瞄准比吸收率(SAR)是优化磁体热疗中磁性纳米粒子的有效性的关键参数。 AC磁度计是一种通过计算滞后环'区域来量化SAR的强大技术。然而,目前可用的设备产生相当有限的磁场强度,低于45mt,这通常不足以获得主要的滞后环等,因此更完整和更能理解的磁性化。该限制导致缺乏关于一些基本性质的信息,例如最大可获得的(SAR)作为粒子尺寸和激发频率的函数,或者机械旋转在液体样品中的作用。填补这种差距的方法,我们开发了一种多功能的高场AC磁力计,能够在广泛的磁热热频率(100 kHz - 1MHz)上工作,达到90mt的现场强度。此外,我们的装置包括可变温度系统,用于在220和380k之间连续测量。我们已经优化了最大化产生的磁场强度的感应线圈的几何特性。结果说明了我们的装置的效力,我们存在和模拟在液体和磁性颗粒的磁性颗粒的液体和冷冻溶液中进行的一系列测量,其尺寸范围为16至29nm。结论我们表明,交流磁力测定是一种非常可靠的技术,用于确定单个域的有效各向异性常数,研究机械取向在SAR中的影响,并选择最佳激励参数,以最大限度地利用人类安全限制。

著录项

相似文献

  • 外文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号