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基于双畴铌酸锂单晶的低频振动能量采集

Low-Frequency Vibration Energy Harvesting With Bidomain LiNbO Single Crystals.

作者信息

Vidal Joao V, Turutin Andrei V, Kubasov Ilya V, Kislyuk Alexander M, Malinkovich Mikhail D, Parkhomenko Yury N, Kobeleva Svetlana P, Pakhomov Oleg V, Sobolev Nikolai A, Kholkin Andrei L

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2019 Sep;66(9):1480-1487. doi: 10.1109/TUFFC.2019.2908396. Epub 2019 Apr 11.

DOI:10.1109/TUFFC.2019.2908396
PMID:30990180
Abstract

Low-frequency vibration energy harvesting is becoming increasingly important for environmentally friendly and biomedical applications in order to power various wearable and implanted devices. In this paper, we propose the use of piezoelectric congruent LiNbO (LN) single crystals, with an engineered bidomain structure, as an alternative to the widely employed lead-based PZT. We thus compared experimentally the pure vibration energy scavenging performance of square-shaped bidomain and single-domain Y+128°-cut LN crystals and a conventional bimorph soft PZT ceramic bonded to long spring-steel cantilevers as a function of the frequency, load resistance, and tip proof mass. At a low bending resonance frequency of ca. 32.2 Hz, the bidomain LN yielded an open-circuit voltage of 1.54 kV/g, almost one order of magnitude larger than that observed in PZT. The maximum extractable average power was found to be of 9.2 mW/g in the bidomain LN, 6.2 mW/g in the single-domain LN, and 1.8 mW/g in the PZT piezo-elastic cantilevers. With five times higher output power density of up to 11.0 mW/(cm [Formula: see text]) under resonance conditions, bidomain LN was thus shown to be a reliable lead-free and high-temperature alternative to PZT, thanks to its considerably larger quality factor and electromechanical conversion efficiency.

摘要

为了为各种可穿戴和植入式设备供电,低频振动能量采集对于环保和生物医学应用而言正变得越来越重要。在本文中,我们提议使用具有工程化双畴结构的压电同成分铌酸锂(LN)单晶,以替代广泛使用的铅基锆钛酸铅(PZT)。因此,我们通过实验比较了方形双畴和单畴Y + 128°切割LN晶体以及粘结到长弹簧钢悬臂梁上的传统双压电晶片软PZT陶瓷的纯振动能量采集性能,该性能是频率、负载电阻和尖端验证质量的函数。在约32.2 Hz的低弯曲共振频率下,双畴LN产生的开路电压为1.54 kV/g,几乎比PZT中观察到的电压大一个数量级。发现双畴LN中可提取的最大功率为9.2 mW/g,单畴LN中为6.2 mW/g,PZT压电弹性悬臂梁中为1.8 mW/g。在共振条件下,双畴LN的输出功率密度高达11.0 mW/(cm²),是PZT的五倍,由于其品质因数和机电转换效率显著更高,因此双畴LN被证明是一种可靠的无铅且耐高温的PZT替代品。

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