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低维复合材料和多孔材料的压电应用

Piezoelectric Applications of Low-Dimensional Composites and Porous Materials.

作者信息

Luo Xiaoqiang, Li Qingbin, Wang Yichao

机构信息

College of Chemical and Environmental Engineering, Pingdingshan University, Pingdingshan 467000, China.

School of Engineering, Design and Built Environment, Western Sydney University, Penrith, NSW 2751, Australia.

出版信息

Materials (Basel). 2024 Feb 9;17(4):844. doi: 10.3390/ma17040844.

Abstract

Low-dimensional (LD) materials, with atomically thin anisotropic structures, exhibit remarkable physical and chemical properties, prominently featuring piezoelectricity resulting from the absence of centrosymmetry. This characteristic has led to diverse applications, including sensors, actuators, and micro- and nanoelectromechanical systems. While piezoelectric effects are observed across zero-dimensional (0D), one-dimensional (1D), and two-dimensional (2D) LD materials, challenges such as effective charge separation and crystal structure imperfections limit their full potential. Addressing these issues requires innovative solutions, with the integration of LD materials with polymers, ceramics, metals, and other porous materials proving a key strategy to significantly enhance piezoelectric properties. This review comprehensively covers recent advances in synthesizing and characterizing piezoelectric composites based on LD materials and porous materials. The synergistic combination of LD materials with other substances, especially porous materials, demonstrates notable performance improvements, addressing inherent challenges. The review also explores future directions and challenges in developing these composite materials, highlighting potential applications across various technological domains.

摘要

低维(LD)材料具有原子级薄的各向异性结构,展现出卓越的物理和化学性质,其突出特点是由于缺乏中心对称性而产生压电性。这一特性已带来了包括传感器、致动器以及微纳机电系统在内的多种应用。虽然在零维(0D)、一维(1D)和二维(2D)低维材料中均观察到了压电效应,但诸如有效电荷分离和晶体结构缺陷等挑战限制了它们的全部潜力。解决这些问题需要创新的解决方案,事实证明,将低维材料与聚合物、陶瓷、金属及其他多孔材料相结合是显著提高压电性能的关键策略。本综述全面涵盖了基于低维材料和多孔材料合成及表征压电复合材料的最新进展。低维材料与其他物质,特别是多孔材料的协同组合展现出显著的性能提升,解决了固有挑战。该综述还探讨了开发这些复合材料的未来方向和挑战,突出了其在各个技术领域的潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1afb/10890303/48f0b2d8cdb9/materials-17-00844-g001.jpg

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