Printed High-Adhesion Flexible Electrodes Based on an Interlocking Structure for Self-Powered Intelligent Movement Monitoring

材料科学 联锁 电极 柔性电子器件 摩擦电效应 MXenes公司 纳米发生器 纳米技术 可伸缩电子设备 石墨烯 弯曲 数码产品 涂层 复合材料 机械工程 压电 电气工程 化学 物理化学 工程类
作者
Kai Huang,Xu Cai,Ruzhi Shang,Wei Yang,Xin Shi,Wei Wang,Huamin Chen,Yun Xu
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:15 (50): 58583-58592 被引量:7
标识
DOI:10.1021/acsami.3c13467
摘要

Two-dimensional transition metal carbide nitrides (MXenes) have been extensively explored in diverse areas, such as electrochemical energy storage and flexible electronics. Although the solution-processed MXene-based device has made significant achievements, it is still a challenge to develop large-scale and high-resolution printing methods for flexible printed electronics. In this work, we reported a novel strategy of a porous interlocking structure to obtain flexible MXene/laser-induced graphene (LMX) composite electrodes with enhanced adhesion and high printing resolution. In comparison to traditional printed MXene electrodes, the LMX electrode with an interlocking interface possesses enhanced mechanical properties (adhesive strength of 2.17 MPa) and comparable electrical properties (0.68 S/mm). Furthermore, owing to the outstanding stability and flexibility, the LMX-based triboelectric nanogenerator (TENG) can be used as a self-powered sensor to monitor finger-bending movement. A support vector machine (SVM)-assisted self-powered motion sensor can distinguish the bending angle with high recognition accuracy and can effectively identify different angles. The successful experience of directly printing flexible electrodes with excellent mechanical and electrical properties can be promoted to other solution-processed two-dimensional materials. Our strategy opens up a promising perspective to develop flexible and printed electronics.

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