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基于特定 3D 纳米 BCZT@Ag 异质结构设计的高性能柔性压电纳米发电机用于自供电无线传感器系统。

High-Performance Flexible Piezoelectric Nanogenerator Based on Specific 3D Nano BCZT@Ag Hetero-Structure Design for the Application of Self-Powered Wireless Sensor System.

机构信息

School of Physics and Electronics, Henan University, Kaifeng, 475004, P. R. China.

State Grid Fuzhou Electric Power Supply Company, Fuzhou, 350009, P. R. China.

出版信息

Small. 2021 Sep;17(37):e2101333. doi: 10.1002/smll.202101333. Epub 2021 Aug 10.

Abstract

With the popularity of portable and miniaturized electronic devices in people's live, flexible piezoelectric nanogenerators (PENG) have become a research hotspot for harvesting energy from the living environment to power small-scale electronic equipment and systems because of its stability. For further enhancing output performance of PENG, chemical modification and structural design for piezoelectric fillers are effective ways. Thus, the 3D porous hetero-structure fillers of BCZT@Ag are prepared by freeze-drying method and subsequent chemical seeding reduction. The silicone rubber as matrix is filled into the micro-voids of fillers to prepare specialized composite. The charge transport mechanism and stress transfer efficiency in PENG can be effectively improved through specialized design which is proven by experimental results and multi-physics simulations. The improved PENG exhibit a significantly enhanced output of 38.6 V and 5.85 µA, which is 3.3 and 3.5 times higher than those of PENG without specific design. The prepared PENG can effectively harvest biomechanical energy through walk and joint bending of human body. Moreover, the PENG can be used as a trigger to remotely control wireless collision alarm system, which can acquire rapid response and shows great potential application in Internet of Things.

摘要

随着便携式和小型化电子设备在人们生活中的普及,由于其稳定性,灵活的压电纳米发电机(PENG)已成为从生活环境中获取能量以为小型电子设备和系统供电的研究热点。为了进一步提高 PENG 的输出性能,对压电填料进行化学改性和结构设计是有效的方法。因此,通过冷冻干燥法和随后的化学种子还原法制备了 BCZT@Ag 的 3D 多孔异质结构填料。硅橡胶作为基体填充到填料的微孔中,制备专用复合材料。通过实验结果和多物理场模拟证明,专用设计可以有效提高 PENG 中的电荷输运机制和应力传递效率。改进后的 PENG 表现出显著增强的输出,为 38.6 V 和 5.85 µA,分别比没有特定设计的 PENG 高 3.3 倍和 3.5 倍。所制备的 PENG 可以通过人体的行走和关节弯曲有效地收集生物力学能量。此外,PENG 可用作远程控制无线碰撞报警系统的触发器,可实现快速响应,在物联网中具有巨大的潜在应用。

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