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基于双畴铌酸锂复合材料的双振动与磁能收集

Dual Vibration and Magnetic Energy Harvesting With Bidomain LiNbO-Based Composite.

作者信息

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

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2020 Jun;67(6):1219-1229. doi: 10.1109/TUFFC.2020.2967842. Epub 2020 Jan 22.

DOI:10.1109/TUFFC.2020.2967842
PMID:31985416
Abstract

With the recent thriving of low-power electronic microdevices and sensors, the development of components capable of scavenging environmental energy has become imperative. In this article, we studied bidomain congruent LiNbO (LN) single crystals combined with magnetic materials for dual, mechanical, and magnetic energy harvesting applications. A simple magneto-mechano-electric composite cantilever, with a trilayered long-bar bidomain LN/spring-steel/metglas structure and a large tip proof permanent magnet, was fabricated. Its vibration and magnetic energy harvesting capabilities were tested while trying to optimize its resonant characteristics, load impedance, and tip proof mass. The vibration measurements yielded a peak open-circuit voltage of 2.42 kV/g, a short-circuit current of [Formula: see text]/g, and an average power of up to 35.6 mW/g, corresponding to a power density of 6.9 mW/(cm [Formula: see text]), at a low resonance frequency of 29.22 Hz and with an optimal load of 40 [Formula: see text]. The magnetic response revealed a resonant peak open-circuit voltage of 90.9 V/Oe and an average power of up to [Formula: see text]/Oe, corresponding to a relatively large magnetoelectric coefficient of 1.82 kV/(cm · Oe) and a power density of [Formula: see text]/(cm [Formula: see text]). We thus developed a system that is, in principle, able to scavenge electrical power simultaneously from low-level ambient mechanical and magnetic sources to feed low-power electronic devices.

摘要

随着近期低功耗电子微器件和传感器的蓬勃发展,开发能够收集环境能量的组件变得势在必行。在本文中,我们研究了双畴一致的铌酸锂(LN)单晶与磁性材料相结合,用于双能源、机械能和磁能收集应用。制作了一种简单的磁 - 机 - 电复合悬臂梁,其具有三层长条双畴LN/弹簧钢/非晶态金属结构以及一个大的防倾翻尖端永磁体。在尝试优化其共振特性、负载阻抗和防倾翻质量的同时,测试了其振动和磁能收集能力。振动测量结果显示,在29.22 Hz的低共振频率下,当最佳负载为40Ω时,峰值开路电压为2.42 kV/g,短路电流为[公式:见原文]/g,平均功率高达35.6 mW/g,对应的功率密度为6.9 mW/(cm²[公式:见原文])。磁响应显示共振峰值开路电压为90.9 V/Oe,平均功率高达[公式:见原文]/Oe,对应的磁电系数相对较大,为1.82 kV/(cm·Oe),功率密度为[公式:见原文]/(cm²[公式:见原文])。因此,我们开发了一种原则上能够同时从低水平的环境机械和磁源收集电能以馈送低功耗电子设备的系统。

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