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Resonant Magnetic Field Sensors Based On MEMS Technology

机译:基于MEMS技术的共振磁场传感器

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摘要

Microelectromechanical systems (MEMS) technology allows the integration of magnetic field sensors with electronic components, which presents important advantages such as small size, light weight, minimum power consumption, low cost, better sensitivity and high resolution. We present a discussion and review of resonant magnetic field sensors based on MEMS technology. In practice, these sensors exploit the Lorentz force in order to detect external magnetic fields through the displacement of resonant structures, which are measured with optical, capacitive, and piezoresistive sensing techniques. From these, the optical sensing presents immunity to electromagnetic interference (EMI) and reduces the read-out electronic complexity. Moreover, piezoresistive sensing requires an easy fabrication process as well as a standard packaging. A description of the operation mechanisms, advantages and drawbacks of each sensor is considered. MEMS magnetic field sensors are a potential alternative for numerous applications, including the automotive industry, military, medical, telecommunications, oceanographic, spatial, and environment science. In addition, future markets will need the development of several sensors on a single chip for measuring different parameters such as the magnetic field, pressure, temperature and acceleration.
机译:微机电系统(MEMS)技术允许将磁场传感器与电子组件集成在一起,这具有重要的优势,例如体积小,重量轻,功耗最小,成本低,灵敏度更高和分辨率更高。我们提出了基于MEMS技术的谐振磁场传感器的讨论和回顾。实际上,这些传感器利用洛伦兹力来通过共振结构的位移来检测外部磁场,这些位移是通过光学,电容和压阻传感技术进行测量的。由此可见,光学传感具有抗电磁干扰(EMI)的能力,并降低了读出的电子复杂度。此外,压阻感测需要简单的制造过程以及标准包装。考虑每个传感器的操作机制,优点和缺点的描述。 MEMS磁场传感器是许多应用的潜在替代产品,包括汽车工业,军事,医疗,电信,海洋学,空间和环境科学。此外,未来的市场将需要在单个芯片上开发多个传感器以测量不同的参数,例如磁场,压力,温度和加速度。

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