用于磁场和温度检测的基于Love波的磁性SAW RFID传感器

IF 2.3 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE journal of radio frequency identification Pub Date : 2023-08-01 DOI:10.1109/JRFID.2023.3299704
Prince Mengue;Laurine Meistersheim;Sami Hage-Ali;Cécile Floer;Sébastien Petit-Watelot;Daniel Lacour;Michel Hehn;Omar Elmazria
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引用次数: 0

摘要

磁场测量包括温度补偿是必不可少的磁场传感器。本文研究了一种反射延迟线结构的磁表面声波传感器,该传感器具有带和不带磁场敏感层的两条声传播路径。有敏感层的路径延迟导致磁场检测,没有敏感层的路径延迟导致温度测量,从而补偿第一条路径。所开发的传感器基于ZnO/LiNbO3 Y-cut (x方向)分层结构作为Love波平台。Love波作为横波更有利于磁探测。Co-Fe-B被认为是探测磁场变化的敏感层,并沉积在ZnO的顶部,但仅在两条路径中的一条上。我们将连接idt的原始配置与高机电耦合系数(K2)模式相结合,以提高信号幅度。该传感器的高温和磁场灵敏度分别为- 63 ppm/°C和- 781 ppm/mT。用微分测量法减去有敏感层和没有敏感层的两条路径的延迟时间,证明了磁场测量的温度补偿方法。最后,该传感器在不同温度下具有良好的重复性。此外,开发的设备除了允许多传感器功能外,还允许部署传感器网络所需的射频识别(RFID)。
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Magnetic SAW RFID Sensor Based on Love Wave for Detection of Magnetic Field and Temperature
Magnetic field measurement including a temperature compensation is essential for a magnetic field sensor. This study investigates a magnetic surface acoustic wave (MSAW) sensor in a reflective delay line configuration with two acoustic propagation paths with and without magnetic field sensitive layer. The delay in path with sensitive layer leads to magnetic field detection and the one without enables temperature measurement and thus compensation for the first path. The developed sensor is based on a ZnO/LiNbO3 Y-cut (X-direction) layered structure as Love wave platform. Love wave as a shear wave being more favorable for magnetic detection. Co-Fe-B is considered as sensitive layer to detect magnetic field changes and is deposited on the top of ZnO, but only on one of the two paths. We combined an original configuration of connected IDTs with a high electromechanical coupling coefficient (K2) mode to improve the signal amplitude. The achieved sensor exhibits a high temperature and magnetic field sensitivity of −63 ppm/°C and −781 ppm/mT, respectively. The temperature compensation method for magnetic field measurement is demonstrated using a differential measurement by subtracting the delay times obtained for the two paths with and without the sensitive layer. Finally, the sensor exhibited good repeatability at various temperatures. Moreover, the device developed allows in addition to the multisensor functionality, the radio frequency identification (RFID) which is necessary for the deployment of sensor networks.
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