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一种无液体导电离子弹性体,用于可 3D 打印的多功能自修复电子皮肤,具有触觉感应能力。

A liquid-free conducting ionoelastomer for 3D printable multifunctional self-healing electronic skin with tactile sensing capabilities.

机构信息

CAS Key Laboratory of Design and Assembly of Functional Nanostructures, Fujian Key Laboratory of Nanomaterials, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou 350108, China.

School of Mechanical Engineering and Automation, Fuzhou University, Fuzhou 350108, China.

出版信息

Mater Horiz. 2023 Aug 29;10(9):3610-3621. doi: 10.1039/d3mh00612c.

Abstract

Conductive elastomers with both softness and conductivity are widely used in the field of flexible electronics. Nonetheless, conductive elastomers typically exhibit prominent problems such as solvent volatilization and leakage, and poor mechanical and conductive properties, which limit their applications in electronic skin (e-skin). In this work, a liquid-free conductive ionogel (LFCIg) with excellent performance was fabricated by utilizing the innovative double network design approach based on a deep eutectic solvent (DES). The double-network LFCIg is cross-linked by dynamic non-covalent bonds, which exhibit excellent mechanical properties (2100% strain while sustaining a fracture strength of 1.23 MPa) and >90% self-healing efficiency, and a superb electrical conductivity of 23.3 mS m and 3D printability. Moreover, the conductive elastomer based on LFCIg has been developed into a stretchable strain sensor that achieves accurate response recognition, classification, and identification of different robot gestures. More impressively, an e-skin with tactile sensing functions is produced by 3D printing of sensor arrays on flexible electrodes to detect light weight objects and recognize the resulting spatial pressure variations. Collectively, the results demonstrate that the designed LFCIg has unparalleled advantages and presents wide application potential in flexible robotics, e-skin and physiological signal monitoring.

摘要

具有柔软性和导电性的导电弹性体在柔性电子产品领域得到了广泛应用。然而,导电弹性体通常存在溶剂挥发和泄漏、机械性能和导电性能差等突出问题,限制了其在电子皮肤(e-skin)中的应用。在这项工作中,利用基于深共晶溶剂(DES)的创新双网络设计方法,制备了具有优异性能的无液导电离子凝胶(LFCIg)。双网络 LFCIg 通过动态非共价键交联,具有优异的机械性能(2100%的应变,同时保持 1.23 MPa 的断裂强度)和>90%的自修复效率,以及 23.3 mS m 的超高电导率和 3D 可打印性。此外,基于 LFCIg 的导电弹性体已被开发成一种可拉伸应变传感器,可实现对不同机器人手势的准确响应识别、分类和识别。更令人印象深刻的是,通过在柔性电极上 3D 打印传感器阵列来制作具有触觉传感功能的电子皮肤,以检测轻量级物体并识别由此产生的空间压力变化。总的来说,这些结果表明,所设计的 LFCIg 具有无与伦比的优势,在柔性机器人、电子皮肤和生理信号监测等领域具有广泛的应用潜力。

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