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基于隧道磁阻传感器的线性定位系统中用于绝对和增量线的无对齐传感模块

Alignment-Free Sensing Module for Absolute and Incremental Lines in Linear Positioning System Based on Tunneling-Magnetoresistance Sensors.

作者信息

Lee Chia-Chang, Yen Yu-Shen, Lai Chih-Huang

机构信息

Department of Materials Science and Engineering, National Tsing Hua University, Hsinchu 30013, Taiwan.

出版信息

Sensors (Basel). 2021 Jun 16;21(12):4137. doi: 10.3390/s21124137.

Abstract

An alignment-free sensing module for the positioning system based on tunneling magnetoresistive (TMR) sensors with an absolute-incremental-integrated scale is demonstrated. The sensors of the proposed system for both lines consist of identical layer stacks; therefore, all sensors can be fabricated in identical processes from thin film deposition to device patterning on a single substrate. Consequently, the relative position of the sensors can be predefined at the lithography stage and the alignment error between sensors caused by the manual installation is completely eliminated. Different from the existing sensing scheme for incremental lines, we proposed to utilize the magnetic tunnel junctions with a perpendicular anisotropy reference layer and an in-plane anisotropy sensing layer. The sensors are placed parallel to the scale plane with magnetization of the sensing layer in the plane, which show the capability of polarity detection for the absolute line and reveal sinusoidal output signal for the incremental line. Furthermore, due to the large signal of TMR, the working distance can be further improved compared with conventional sensors. In addition, the cost of the positioning system is expected to be lowered, since all the sensors are fabricated in the same process without extra installation. Our design may pave a new avenue for the positioning system based on a magnetic detection scheme.

摘要

展示了一种用于基于具有绝对 - 增量 - 集成刻度的隧道磁阻(TMR)传感器的定位系统的免对准传感模块。所提出系统的两条线路的传感器由相同的层堆叠组成;因此,所有传感器都可以在从薄膜沉积到在单个基板上进行器件图案化的相同工艺中制造。因此,传感器的相对位置可以在光刻阶段预先定义,并且完全消除了由手动安装引起的传感器之间的对准误差。与现有的增量线路传感方案不同,我们建议使用具有垂直各向异性参考层和平面内各向异性传感层的磁性隧道结。传感器平行于刻度平面放置,传感层的磁化方向在平面内,这表明其对绝对线路具有极性检测能力,并且对增量线路显示正弦输出信号。此外,由于TMR的信号较大,与传统传感器相比,工作距离可以进一步提高。另外,由于所有传感器都在相同工艺中制造且无需额外安装,预计定位系统的成本会降低。我们的设计可能为基于磁检测方案的定位系统开辟一条新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/68e9/8233855/a22dd468bed3/sensors-21-04137-g001.jpg

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