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具有表面组装镶嵌结构以增强压电传感的聚二甲基硅氧烷/钛酸钡纳米发电机

Polydimethylsiloxane/BaTiO Nanogenerators with a Surface-Assembled Mosaic Structure for Enhanced Piezoelectric Sensing.

作者信息

Zhou Junyu, Gou Xue, Fan Duan, Wang Jiayi, Wan Zhengjun

机构信息

Key Laboratory of Advanced Technologies of Materials (Ministry of Education), School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu, Sichuan 610031, P. R. China.

The Peac Institute of Multiscale Sciences, Chengdu, Sichuan 610031, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2022 Aug 24;14(33):38105-38115. doi: 10.1021/acsami.2c04196. Epub 2022 Aug 15.

Abstract

Incorporation of inorganic piezoelectric ceramic nanoparticles into a highly elastic polymer matrix is an effective method to develop self-powered sensors and energy harvesters. Herein, a piezoelectrically enhanced nanogenerator (NG) obtained by dispersing lead-free BaTiO piezoelectric nanoparticles into elastic polydimethylsiloxane and further surface-modifying with a neoteric mosaic structure for self-powered sensing is proposed. The composites fabricated through this facile and low-cost approach exhibit enhanced voltage by a factor of 1.5 relative to those without modification and display improved mechanical properties with increased elongation at break (failure strain of 150%). The improved performance is mainly attributed to the embossed mosaic structure on the surface, which is theoretically verified by multiphysics simulation. The NGs exhibit highly sensitive and stable piezoelectric output under contact and noncontact working modes and can be applied to detect human vital signs, including bending of fingers and wrists, and various breathing activities, demonstrating wide applications in flexible and smart wearable electronics. The design of the neoteric mosaic structure could be extended to other composite-based NGs, offering significant advantages for the rational design of flexible electronics.

摘要

将无机压电陶瓷纳米颗粒掺入高弹性聚合物基体中是开发自供电传感器和能量收集器的有效方法。在此,提出了一种压电增强纳米发电机(NG),它是通过将无铅钛酸钡压电纳米颗粒分散到弹性聚二甲基硅氧烷中,并进一步用新型镶嵌结构进行表面改性以实现自供电传感而获得的。通过这种简便且低成本的方法制备的复合材料,相对于未改性的复合材料,其输出电压提高了1.5倍,并且随着断裂伸长率的增加(断裂应变达150%),材料的机械性能得到改善。性能的提升主要归因于表面的压花镶嵌结构,这一点通过多物理场模拟得到了理论验证。该纳米发电机在接触和非接触工作模式下均表现出高度灵敏且稳定的压电输出,可用于检测人体生命体征,包括手指和手腕的弯曲以及各种呼吸活动,在柔性和智能可穿戴电子设备中展现出广泛的应用前景。新型镶嵌结构的设计可扩展到其他基于复合材料的纳米发电机,为柔性电子器件的合理设计提供了显著优势。

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