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生物毛发启发的 AgNWs@Au 嵌入 Nafion 电极,具有高稳定性,可用于自供电离子柔性传感器。

Biological Hair-Inspired AgNWs@Au-Embedded Nafion Electrodes with High Stability for Self-Powered Ionic Flexible Sensors.

机构信息

Jiangsu Provincial Key Laboratory of Special Robot Technology, Hohai University, Changzhou Campus, Changzhou 213022, China.

Anhui Province Key Lab of Aerospace Structural Parts Forming Technology and Equipment, Hefei University of Technology, Hefei 230009, China.

出版信息

ACS Appl Mater Interfaces. 2022 Oct 12;14(40):46023-46031. doi: 10.1021/acsami.2c11754. Epub 2022 Sep 30.

Abstract

Ionic flexible sensors (IFS) usually consist of an ionomer matrix and two conductive electrodes, the failure of which mostly originates from interfacial debonding between matrix and electrode layers. To improve electrode's adhesion and impedance matching with matrix, polymer binder or plasmonic heating technology is used to enhance the adhesion of electrodes, but there are technical challenges such as high resistance and harsh conditions. Herein, inspired by biological hair, we proposed a reliable and facile method to form AgNWs@Au-embedded Nafion flexible electrodes (AN FEs) for IFS without rigorous temperature and harsh conditions. Through integrating the spraying and electrodepositing Au method, we achieved that the AgNWs are partly embedded in the matrix layer for forming the embedded layer, similar to the root of biological hair, which is used to fix the FEs and collect the ion charges. The other parts of AgNWs exposed on the surface form the conductive mesh layer for transmitting the signal, analogous to the tip of biological hair. Compared with other AgNWs FEs, AN FEs exhibit high adhesion (∼358 kPa) and low sheet resistance (∼ 3.7 Ω/□), and high stabilities after 100 washing cycles, 200 s HO corrosion or 1500s HCl corrosion. A self-powered IFS prepared by AN FEs can achieve dual sensing of mechanical strain and ambient humidity and still has promising sensing performance after being exposed to air for 2 months, which further indicates potential applications of the prepared FEs in next-generation multifunctional flexible electronic devices.

摘要

离子弹性体传感器(IFS)通常由离聚物基质和两个导电电极组成,其失效主要源于基质与电极层之间的界面脱粘。为了提高电极与基质的附着力和阻抗匹配,采用聚合物粘结剂或等离子体加热技术来增强电极的附着力,但存在电阻高、条件苛刻等技术挑战。受生物毛发启发,我们提出了一种可靠且简便的方法,可在无需严格温度和苛刻条件下,为 IFS 形成具有 AgNWs@Au 嵌入式 Nafion 柔性电极(AN FEs)。通过整合喷涂和电沉积 Au 方法,我们实现了 AgNWs 的部分嵌入基质层,形成嵌入式层,类似于生物毛发的根部,用于固定 FEs 和收集离子电荷。暴露在表面的 AgNWs 的其他部分形成导电网格层,用于传输信号,类似于生物毛发的尖端。与其他 AgNWs FEs 相比,AN FEs 表现出高附着力(约 358kPa)和低电阻(约 3.7Ω/□),并且在 100 次洗涤循环、200s 高氯酸腐蚀或 1500s 盐酸腐蚀后具有较高的稳定性。由 AN FEs 制备的自供电 IFS 可以实现机械应变和环境湿度的双重感应,并且在暴露于空气中 2 个月后仍具有良好的感应性能,这进一步表明所制备的 FEs 在下一代多功能柔性电子设备中的应用前景。

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