压电
材料科学
聚偏氟乙烯
光电子学
铁电性
极化(电化学)
耐久性
压电传感器
复合材料
机械能
电压
功率密度
纳米技术
压力传感器
弯曲
压电系数
PMUT公司
能量收集
纳米发生器
微电子机械系统
小型化
中性面
灵敏度(控制系统)
悬臂梁
压力(语言学)
工作(物理)
薄膜
胶粘剂
功率(物理)
Nafion公司
作者
Xu Wang,Qiansheng Qiu,Sheng Li,Xiaoxia Huang,Yan Zhou,Doudou Hou,Yanhao Wu,Qi Wang,Xiaolong Lu,Chang Guo
出处
期刊:Langmuir
[American Chemical Society]
日期:2026-03-04
卷期号:42 (10): 7290-7297
被引量:1
标识
DOI:10.1021/acs.langmuir.5c06423
摘要
Polyvinylidene fluoride (PVDF) is widely used in flexible, self-powered pressure sensors due to its superior piezoelectric properties, although it necessitates the development of a ferroelectric polarized phase for such applications. In recent years, a piezoionic–electronic architecture integrating PVDF with Nafion has emerged, allowing PVDF polarization through mechanical stress alone and thereby streamlining device design and fabrication. To further boost the piezoelectric efficacy of these devices, this work introduces an MXene-based enhancement strategy. Specifically, a trilayered PVDF/Nafion–MXene/PVDF film (referred to as PNMP) was fabricated using hot-pressing, with subsequent mechanical bending to induce self-polarization in the PVDF components. Investigations reveal that the superior piezoelectric properties of the PNMP films originate from the multifunctional role of MXene: aiding Nafion’s proton transport while constructing an electron transmission channel, enhancing charge accumulation at the Nafion/PVDF interface, and promoting β-phase formation in PVDF. The fabricated sensor exhibits an extensive pressure-sensing range from 4.7 to 867.0 kPa, a sensitivity of 64.5 mV/kPa, a rapid response of 0.5 ms, an elevated piezoelectric power density of 660 mW/m 2, and excellent operational durability of 200,000 strikes. The PNMP film’s real-world utility was demonstrated via applications like powering LEDs, kinetic energy harvesting, and tracking human movements, highlighting its potential for wearable technologies, energy harvesting, and precise mass sensing. This study provides insightful guidance for advancing next-generation piezoionic–electronic piezoelectric systems.
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