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基于凹坑结构和细胞封装结构的摩擦电多孔 PVDF 纳米发电机增强运动监测器的输出信号。

Enhancing Output Signals of Sport Monitors Based on Triboelectric Porous PVDF Nanogenerators via Concaving Cells and Cell-Packing Structures.

机构信息

School of Chemistry and Chemical Engineering, and Chongqing Key Laboratory of Soft-Matter Material Chemistry and Function Manufacturing, Southwest University, Chongqing 400715, China.

Sichuan Lutianhua Co., Ltd., Chengdu, Sichuan 646300, China.

出版信息

ACS Appl Bio Mater. 2023 Oct 16;6(10):4168-4177. doi: 10.1021/acsabm.3c00377. Epub 2023 Sep 8.

Abstract

Porous triboelectric polymer materials are widely used in portable sensors due to their lightweight and suitable mechanical performance, but their triboelectric properties need to be improved. Here, we propose a two-step strategy to concave the cell and cell-packing structure of triboelectric materials based on porous poly(vinylidene fluoride) (PVDF). The first step is to prepare triboelectric nanogenerators (TENGs) of PVDF with a concave cell-packing structure via oriented phase inversion. The second step is to concave the cells by radial and axial compression. The results reveal that the concavities in the cell structure at the radial direction and in the cell-packing structure at the axial direction improve the output signals of the porous PVDF TENG by ca. 150 and 110%, respectively. By contrast, the concaving in cell structure at the radial direction exerts a positive effect on triboelectric performance only when the radial compression strain is not bigger than 17.5%, especially when the cell wall is thin (ca. 0.85 μm). Meanwhile, the concavity-based strategy eliminates the irreversible deformation behavior of the porous PVDF material, enhancing its elasticity. The stability test shows that the sensor based on those materials is stable under 12,500 cycles, and the variance in the square derivation of output voltage is less than 1% during the cycle friction. Such stable and triboelectric-improved materials are assembled into sports-monitoring devices, providing an idea for the application of TENG in smart sensing.

摘要

多孔摩擦电聚合物材料由于其轻质和合适的机械性能而被广泛应用于便携式传感器,但它们的摩擦电性能仍需要提高。在这里,我们提出了一种基于多孔聚偏二氟乙烯(PVDF)的两步策略来凹入摩擦材料的单元和单元堆积结构。第一步是通过定向相转化制备具有凹形单元堆积结构的 PVDF 摩擦纳米发电机(TENG)。第二步是通过径向和轴向压缩来凹入单元。结果表明,在径向上凹入单元结构和在轴向上凹入单元堆积结构分别使多孔 PVDF TENG 的输出信号提高了约 150%和 110%。相比之下,只有当径向压缩应变不大于 17.5%时,特别是当细胞壁较薄(约 0.85 μm)时,在径向上凹入单元结构对摩擦电性能才具有积极影响。同时,基于凹入的策略消除了多孔 PVDF 材料的不可逆变形行为,提高了其弹性。稳定性测试表明,基于这些材料的传感器在 12500 次循环下稳定,在循环摩擦过程中输出电压方均根的变化小于 1%。这种稳定且摩擦电性能得到改善的材料被组装成运动监测设备,为 TENG 在智能传感中的应用提供了一种思路。

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