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用于提高能量收集性能的压电陶瓷多尺度异质性策略

Multiscale Heterogeneity Strategy in Piezoceramics for Enhanced Energy Harvesting Performances.

作者信息

Yu Xiaole, Hou Yudong, Zheng Mupeng, Zhu Mankang

机构信息

Faculty of Materials and Manufacturing, Key Laboratory of Advanced Functional Materials, Education Ministry of China, Beijing University of Technology, Beijing 100124, China.

出版信息

ACS Appl Mater Interfaces. 2021 Apr 21;13(15):17800-17808. doi: 10.1021/acsami.1c01409. Epub 2021 Apr 7.

DOI:10.1021/acsami.1c01409
PMID:33826294
Abstract

Piezoelectric energy harvesters (PEHs) with piezoceramics as the core can convert low-frequency vibration energy that is ubiquitous in the environment into electrical energy and are at the frontier of research in the field of energy. The high piezoelectric charge coefficient () together with the large piezoelectric voltage coefficient () are essential for enhancing the energy harvesting performances of PEHs working on a nonresonant state. However, conventional doping and solid solution design strategies lead to the same increase or decrease trend of and dielectric permittivity ε, making it difficult to obtain a high value because = /ε. Herein, exceptionally well-balanced performances of high and large are achieved simultaneously in modified Pb(Zr, Ti)O(PZT)-based ceramics via a multiscale heterogeneity strategy, which involves coordination among the defect dipole, hierarchical domain, and composite. The electromechanical parameters of the optimal specimen are not only superior to those of many state-of-the-art commercial counterparts but also exhibit good thermal stability. Most importantly, the assembled PEH with the optimal specimen shows excellent variable temperature power generation characteristics. This work provides a paradigm for building PEH material through a multiscale heterogeneity strategy, expected to benefit a wide range of electromechanical coupling materials.

摘要

以压电陶瓷为核心的压电能量采集器(PEH)能够将环境中普遍存在的低频振动能量转化为电能,处于能源领域研究的前沿。高压电电荷系数()与大压电电压系数()对于提高处于非共振状态下的PEH的能量采集性能至关重要。然而,传统的掺杂和固溶体设计策略会导致和介电常数ε呈现相同的增减趋势,由于 = /ε,使得难以获得高值。在此,通过多尺度异质性策略,在改性的基于Pb(Zr, Ti)O(PZT)的陶瓷中同时实现了高和大的极其良好平衡的性能,该策略涉及缺陷偶极、分级畴和复合材料之间的协同作用。最佳试样的机电参数不仅优于许多最先进的商业同类产品,而且具有良好的热稳定性。最重要的是,带有最佳试样的组装PEH表现出优异的变温发电特性。这项工作为通过多尺度异质性策略构建PEH材料提供了范例,有望惠及广泛的机电耦合材料。

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