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A flexible magnetic field sensor based on paramagnetic C_(60)@Fe_3O_4 nanocomposites and ordered hexagonally structured substrate

机译:基于顺磁C_(60)@ FE_3O_4纳米复合材料的柔性磁场传感器和有序的六角结构基板

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摘要

Magnetic field detection is one of the most important processes in academic and industrial applications. Flexible magnetic field sensors are often fabricated with magnetic nanoparticles. Superparamagnetic materials have better repeatability than ferromagnetic materials, but the sensitivity needs to be further improved. To solve this problem, in this paper we used C_(60)@Fe_3O_4 which is superparamagnetic and has good dispersion as a sensitive material, and ordered hexagonally structured substrate was fabricated by light curing 3D printing technology to enhance the magnetic response of the sensor. Then we compared the magnetic response characteristics of three different size magnetic field sensors. We found that the medium size sensor has better sensitivity and the maximum sensitivity of magnetic field in the range of 0-400 mT is 0.097 T~(-1). In order to further explore the mechanism of the sensor, we used digital microscope to observe the changes of the sensor surface under the magnetic field, and further put forward the microstructure evolution model of the conductive network under the magnetic field. The sensor described in this paper can be used for repetitive magnetic field sensing without remanence.
机译:磁场检测是学术和工业应用中最重要的过程之一。柔性磁场传感器通常用磁性纳米颗粒制造。超顺磁性材料具有比铁磁性材料更好的重复性,但敏感性需要进一步改善。为了解决这个问题,在本文中,我们使用了超顺磁性的C_(60)@ Fe_3O_4,并且具有良好的分散作为敏感材料,并且通过光固化3D印刷技术制造了有序的六角结构基板,以增强传感器的磁响应。然后我们比较了三种不同尺寸磁场传感器的磁响应特性。我们发现中等尺寸传感器具有更好的灵敏度,磁场的最大灵敏度为0-400 mt的范围为0.097 t〜(-1)。为了进一步探索传感器的机制,我们使用数字显微镜观察磁场下的传感器表面的变化,并进一步提出了磁场下导电网络的微观结构演化模型。本文描述的传感器可用于重复磁场感测而无需释放。

著录项

  • 来源
    《Journal of magnetism and magnetic materials》 |2021年第11期|168171.1-168171.6|共6页
  • 作者单位

    MicroNano System Research Center Key Laboratory of Advanced Transducers and Intelligent Control System of Ministry of Education and Shanxi Province College of Information and Computer Taiyuan University of Technology Taiyuan 030024 China Department of Nuclear Medicine First Hospital of Shanxi Medical University No. 85 Jiefang Road Taiyuan 030001 Shanxi China Molecular Imaging Precision Medical Collaborative Innovation Center Shanxi Medical University Taiyuan 030001 China;

    MicroNano System Research Center Key Laboratory of Advanced Transducers and Intelligent Control System of Ministry of Education and Shanxi Province College of Information and Computer Taiyuan University of Technology Taiyuan 030024 China;

    Department of Nuclear Medicine First Hospital of Shanxi Medical University No. 85 Jiefang Road Taiyuan 030001 Shanxi China Molecular Imaging Precision Medical Collaborative Innovation Center Shanxi Medical University Taiyuan 030001 China;

    Department of Nuclear Medicine First Hospital of Shanxi Medical University No. 85 Jiefang Road Taiyuan 030001 Shanxi China Molecular Imaging Precision Medical Collaborative Innovation Center Shanxi Medical University Taiyuan 030001 China;

    Department of Nuclear Medicine First Hospital of Shanxi Medical University No. 85 Jiefang Road Taiyuan 030001 Shanxi China Molecular Imaging Precision Medical Collaborative Innovation Center Shanxi Medical University Taiyuan 030001 China;

    MicroNano System Research Center Key Laboratory of Advanced Transducers and Intelligent Control System of Ministry of Education and Shanxi Province College of Information and Computer Taiyuan University of Technology Taiyuan 030024 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    3D printing sensor; Flexible sensor; Magnetic field detection; Magnetic nanoparticle;

    机译:3D打印传感器;柔性传感器;磁场检测;磁性纳米粒子;

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