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Omitting the need of external heat capacity data in an adiabatic magnetothermal setup devoted to the characterization of nanomaterials for magnetic hyperthermia

机译:在绝热磁热装置中无需外部热容量数据,该装置专门用于磁热疗纳米材料的表征

摘要

The heat power dissipated by magnetic nanoparticles under alternating magnetic fields is a key parameter in biomedical applications like magnetic hyperthermia. The pulse-heating method determines the temperature increments undergone in adiabatic conditions by a specimen due to magnetic hyperthermia. The heat power can be accurately calculated from these increments provided that the heat capacity of the specimen is previously known. In this work, we highlight how this heat capacity, assumed to be the sum of the contributions of each specimen component, can present deviations due to several effects. Such deviations make necessary a systematic heat capacity determination for every specimen, which in turn requires adequate equipment and additional time. As an alternative, we present a new method that not only provides heat capacity data but also can be implemented in the same setup used for quantifying the temperature increments by the pulse-heating method in adiabatic conditions. Since this method determines the heat capacity during the time intervals between alternating magnetic field pulses, it allows to save characterization time and resources. Eventually, it provides higher accuracy: the heating power is obtained using just one specimen, one setup and one temperature-sweep measurement, avoiding error arising from the specimen composition or measuring conditions.
机译:磁性纳米粒子在交变磁场下耗散的热功率是生物医学应用(如磁热疗)中的关键参数。脉冲加热法确定了样品在绝热条件下由于磁热而经历的温度升高。只要事先知道样品的热容量,就可以从这些增量中准确地计算出热功率。在这项工作中,我们重点介绍了假设为每个样品成分贡献的总和的这种热容如何因多种影响而出现偏差。这样的偏差使得必须对每个样品进行系统的热容确定,这反过来又需要足够的设备和额外的时间。作为替代方案,我们提出了一种新方法,该方法不仅可以提供热容量数据,而且可以在绝热条件下通过脉冲加热方法在用于量化温度增量的相同设置中实施。由于该方法确定了交变磁场脉冲之间的时间间隔内的热容量,因此可以节省表征时间和资源。最终,它提供了更高的精度:仅使用一个样本,一种设置和一项温度扫描测量即可获得加热功率,避免了由样本成分或测量条件引起的误差。

著录项

  • 作者

    Natividad Eva; Andreu Irene;

  • 作者单位
  • 年度 2017
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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