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无铅压电陶瓷中显著增强的能量收集性能:一种协同设计策略。

Significantly enhanced energy harvesting performance in lead-free piezoceramics a synergistic design strategy.

作者信息

Zhang Jianxun, Xu Qianqian, Zhang Yan, Guo Wei, Zeng Hanmin, He Yimeng, Wu Jiatao, Guo Longlong, Zhou Kechao, Zhang Dou

机构信息

State Key Laboratory of Powder Metallurgy, Central South University, Changsha, Hunan, 410083, China.

School of Civil Engineering, Central South University, Changsha, Hunan, 410075, China.

出版信息

Mater Horiz. 2025 May 19;12(10):3494-3504. doi: 10.1039/d4mh01902d.

Abstract

With the rapid development of the Internet of Things, there exists an urgent necessity for high performance piezoelectric energy harvesters to facilitate the construction of more efficient wireless sensor systems. However, the development of piezoelectric energy harvesters with high power density remains a major challenge. In this study, we present a synergistic design strategy aimed at improving the output performance of piezoelectric energy harvesters. Micro-pores with low permittivity were introduced into the ceramics to improve the piezoelectric key parameters, including the piezoelectric voltage coefficient () and the piezoelectric energy harvesting figure of merit (FoM). The barium titanate (BTO) ceramics with 60% aligned pores obtained high and FoM, which were up to 24.8 × 10 V m N and 3.3 × 10 m N. By optimizing the aspect ratio of each ceramic unit, a higher effective stress level dispersed in the ceramic phase was achieved, and the open circuit voltage of the sensor was significantly improved (41.3%). The construction of high-output performance piezoelectric energy harvesters based on BTO ceramics with relatively low piezoelectric coefficients was successfully achieved this synergistic design strategy. This high-performance energy harvester exhibits excellent open-circuit voltage (354.8 V), short-circuit current (710.1 μA) and power density (16.7 mW cm), demonstrating the feasibility of this synergistic design strategy in developing high-output energy supply systems. The application of piezoelectric energy harvesters in powering micro-devices and monitoring train stability was demonstrated. This work is expected to provide new opportunities for the fabrication of future self-powered electronic devices.

摘要

随着物联网的快速发展,迫切需要高性能的压电能量收集器来推动更高效的无线传感器系统的建设。然而,开发具有高功率密度的压电能量收集器仍然是一个重大挑战。在本研究中,我们提出了一种协同设计策略,旨在提高压电能量收集器的输出性能。将具有低介电常数的微孔引入陶瓷中,以改善压电关键参数,包括压电电压系数()和压电能量收集品质因数(FoM)。具有60%排列孔隙的钛酸钡(BTO)陶瓷获得了高的 和FoM,分别高达24.8×10 V m N和3.3×10 m N。通过优化每个陶瓷单元的纵横比,在陶瓷相中实现了更高的有效应力水平,传感器的开路电压得到了显著提高(41.3%)。基于具有相对较低压电系数的BTO陶瓷成功实现了高输出性能压电能量收集器的构建 这种协同设计策略。这种高性能能量收集器表现出优异的开路电压(354.8 V)、短路电流(710.1 μA)和功率密度(16.7 mW cm),证明了这种协同设计策略在开发高输出能量供应系统中的可行性。展示了压电能量收集器在为微型设备供电和监测列车稳定性方面的应用。这项工作有望为未来自供电电子设备的制造提供新的机会。

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