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在空气中工作于 500°C 的横向振动铌酸锂 MEMS 谐振器阵列。

A Laterally Vibrating Lithium Niobate MEMS Resonator Array Operating at 500 °C in Air.

机构信息

Department of Electrical Engineering, Stanford University, 350 Serra Mall, Stanford, CA 94305, USA.

Department of Aeronautics and Astronautics, Stanford University, 496 Lomita Mall, Stanford, CA 94305, USA.

出版信息

Sensors (Basel). 2020 Dec 29;21(1):149. doi: 10.3390/s21010149.

Abstract

This paper reports the high-temperature characteristics of a laterally vibrating piezoelectric lithium niobate (LiNbO; LN) MEMS resonator array up to 500 °C in air. After a high-temperature burn-in treatment, device quality factor () was enhanced to 508 and the resonance shifted to a lower frequency and remained stable up to 500 °C. During subsequent in situ high-temperature testing, the resonant frequencies of two coupled shear horizontal (SH0) modes in the array were 87.36 MHz and 87.21 MHz at 25 °C and 84.56 MHz and 84.39 MHz at 500 °C, correspondingly, representing a -3% shift in frequency over the temperature range. Upon cooling to room temperature, the resonant frequency returned to 87.36 MHz, demonstrating the recoverability of device performance. The first- and second-order temperature coefficient of frequency (TCF) were found to be -95.27 ppm/°C and 57.5 ppb/°C for resonant mode A, and -95.43 ppm/°C and 55.8 ppb/°C for resonant mode B, respectively. The temperature-dependent quality factor and electromechanical coupling coefficient () were extracted and are reported. Device decreased to 334 and total increased to 12.40% after high-temperature exposure. This work supports the use of piezoelectric LN as a material platform for harsh environment radio-frequency (RF) resonant sensors (e.g., temperature and infrared) incorporated with high coupling acoustic readout.

摘要

本文报道了在空气中高达 500°C 的横向振动压电铌酸锂 (LiNbO; LN) MEMS 谐振器阵列的高温特性。经过高温老化处理后,器件的品质因数 (Q) 提高到 508,共振频率向较低频率移动,并在 500°C 下保持稳定。在随后的原位高温测试中,阵列中两个耦合的剪切水平 (SH0) 模式的共振频率分别为 25°C 时的 87.36MHz 和 87.21MHz,以及 500°C 时的 84.56MHz 和 84.39MHz,相应地,在温度范围内频率偏移了-3%。冷却至室温后,共振频率恢复到 87.36MHz,证明了器件性能的可恢复性。发现共振模式 A 的一阶和二阶频率温度系数 (TCF) 分别为-95.27ppm/°C 和 57.5ppb/°C,共振模式 B 的分别为-95.43ppm/°C 和 55.8ppb/°C。提取并报告了随温度变化的品质因数和机电耦合系数 ()。高温暴露后,器件 降低至 334,总 增加至 12.40%。这项工作支持将压电 LN 用作具有高耦合声读出的恶劣环境射频 (RF) 共振传感器(例如,温度和红外)的材料平台。

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