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一种机械坚固且通用的无液离子导电弹性体。

A Mechanically Robust and Versatile Liquid-Free Ionic Conductive Elastomer.

作者信息

Yiming Burebi, Han Ying, Han Zilong, Zhang Xinning, Li Yang, Lian Weizhen, Zhang Mingqi, Yin Jun, Sun Taolin, Wu Ziliang, Li Tiefeng, Fu Jianzhong, Jia Zheng, Qu Shaoxing

机构信息

Key Laboratory of Soft Machines and Smart Devices of Zhejiang Province, Center for X-Mechanics, Department of Engineering Mechanics, Zhejiang University, Hangzhou, 310027, China.

The State Key Laboratory of Fluid Power and Mechatronic Systems, Key Laboratory of 3D Printing Process and Equipment of Zhejiang Province, School of Mechanical Engineering, Zhejiang University, Hangzhou, 310027, China.

出版信息

Adv Mater. 2021 Mar;33(11):e2006111. doi: 10.1002/adma.202006111. Epub 2021 Feb 11.

Abstract

Soft ionic conductors, such as hydrogels and ionogels, have enabled stretchable and transparent ionotronics, but they suffer from key limitations inherent to the liquid components, which may leak and evaporate. Here, novel liquid-free ionic conductive elastomers (ICE) that are copolymer networks hosting lithium cations and associated anions via lithium bonds and hydrogen bonds are demonstrated, such that they are intrinsically immune from leakage and evaporation. The ICEs show extraordinary mechanical versatility including excellent stretchability, high strength and toughness, self-healing, quick self-recovery, and 3D-printability. More intriguingly, the ICEs can defeat the conflict of strength versus toughness-a compromise well recognized in mechanics and material science-and simultaneously overcome the conflict between ionic conductivity and mechanical properties, which is common for ionogels. Several liquid-free ionotronics based on the ICE are further developed, including resistive force sensors, multifunctional ionic skins, and triboelectric nanogenerators (TENGs), which are not subject to limitations of previous gel-based devices, such as leakage, evaporation, and weak hydrogel-elastomer interfaces. Also, the 3D printability of the ICEs is demonstrated by printing a series of structures with fine features. The findings offer promise for a variety of ionotronics requiring environmental stability and durability.

摘要

诸如水凝胶和离子凝胶之类的软性离子导体已使可拉伸且透明的离子电子学成为可能,但它们受制于液体成分固有的关键局限性,这些液体成分可能会泄漏和蒸发。在此,展示了一种新型无液离子导电弹性体(ICE),它是通过锂键和氢键容纳锂阳离子及相关阴离子的共聚物网络,从而使其本质上不会泄漏和蒸发。ICE展现出非凡的机械多功能性,包括出色的拉伸性、高强度和韧性、自修复、快速自我恢复以及3D可打印性。更有趣的是,ICE能够克服强度与韧性之间的矛盾——这是力学和材料科学中公认的一种权衡——同时克服离子电导率与机械性能之间的矛盾,而这在离子凝胶中很常见。基于ICE进一步开发了几种无液离子电子器件,包括电阻式力传感器、多功能离子皮肤和摩擦纳米发电机(TENG),它们不受先前基于凝胶的器件的局限性影响,如泄漏、蒸发以及水凝胶 - 弹性体界面薄弱等问题。此外,通过打印一系列具有精细特征的结构展示了ICE的3D可打印性。这些发现为各种需要环境稳定性和耐久性的离子电子学带来了希望。

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