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Flexible, self-powered, magnetism/pressure dual-mode sensor based on magnetorheological plastomer

机译:基于磁流变塑性体的灵活的自供电磁/压双模式传感器

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A flexible self-powered magnetism/pressure dual-mode sensor, which consists of magnetorheological plastomer (MRP), was developed in this work. The working mechanism of the self-powered sensor was based on the displacement reaction of Fe and CuSO4. Different from traditional flexible pressure sensors, it was not only sensitive to a slight pressure (1.3 kPa), but also responsive to a small magnetic field (12 mT). Under an external magnetic field, the micro-scale carbonyl iron (CI) particles in the MRP electrode aggregated into the chain-like and the cluster-like structures, which enhanced the electrochemical activity of ions in the electrolyte of the electrode materials and formed the conductive network. The voltage increased with the magnetic field strength and the sensitivity was 4.2% at a 252 mT magnetic field. To further explore the mechanism of sensor, the microstructure evolution of CI particles inside the electrode materials under different magnetic fields was simulated by particle-level dynamics method. Finally, a smart writing board based on a self-powered magnetism/pressure dual-mode sensor array was developed and it was sensitive to different magnetic fields without an external power supply, which demonstrated a broad potential for mobile electronic device in the non-contact state.
机译:在这项工作中,开发了一种由磁流变塑性体(MRP)组成的灵活的自供电磁/压双模式传感器。自供电传感器的工作机理是基于Fe和CuSO4的置换反应。与传统的柔性压力传感器不同,它不仅对轻微压力(1.3 kPa)敏感,而且对较小的磁场(12 mT)敏感。在外部磁场作用下,MRP电极中的微米级羰基铁(CI)粒子聚集为链状和簇状结构,从而增强了电极材料电解质中离子的电化学活性并形成了导电网络。电压随着磁场强度的增加而增加,在252 mT磁场下的灵敏度为4.2%。为了进一步探讨传感器的机理,采用粒子级动力学方法模拟了不同磁场条件下电极材料内部CI粒子的微观结构演变。最终,开发了一种基于自供电磁/压双模传感器阵列的智能书写板,它在没有外部电源的情况下对不同的磁场敏感,证明了非接触式移动电子设备的广阔潜力州。

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