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具有超快自愈合、超强粘附和显著形状记忆性能的仿肌肉高韧性、导电且可拉伸的聚(离子液体)液晶离子凝胶

Muscle-Mimetic Highly Tough, Conductive, and Stretchable Poly(ionic liquid) Liquid Crystalline Ionogels with Ultrafast Self-Healing, Super Adhesive, and Remarkable Shape Memory Properties.

作者信息

Li Tianci, Liu Fang, Yang Xuemeng, Hao Shuai, Cheng Yan, Li Shuaijie, Zhu Hongnan, Song Hongzan

机构信息

College of Chemistry & Environmental Science, Hebei University, Baoding, Hebei Province 071002, P. R. China.

State Key Laboratory of Polymer Physics and Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun 130022, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2022 Jun 29;14(25):29261-29272. doi: 10.1021/acsami.2c06662. Epub 2022 Jun 14.

Abstract

Here, we report a simple method for preparing muscle-mimetic highly tough, conductive, and stretchable liquid crystalline ionogels which contains only one poly(ionic liquid) (PIL) in an ionic liquid via in situ free radical photohomopolymerization by using nitrogen gas instead of air atmosphere. Due to eliminating the inhibition caused by dissolved oxygen, the polymerization under nitrogen gas has much higher molecular weight, lower critical sol-gel concentration, and stronger mechanical properties. More importantly, benefiting from the unique loofah-like microstructures along with the strong internal ionic interactions, entanglements of long PIL chains and liquid crystalline domains, the ionogels show special optical anisotropic, superstretchability (>8000%), high fracture strength (up to 16.52 MPa), high toughness (up to 39.22 MJ/m), and have ultrafast self-healing, ultrastrong adhesive, and excellent shape memory properties. Due to its excellent stretchability and good conductive-strain responsiveness, the as-prepared ionogel can be easily applied for high-performance flexible and wearable sensors for motion detecting. Therefore, this paper provides an effective route and developed method to generate highly stretchable conductive liquid crystalline ionogels/elastomers that can be used in widespread flexible and wearable electronics.

摘要

在此,我们报道了一种制备肌肉模拟的高韧性、导电且可拉伸的液晶离子凝胶的简单方法,该方法通过原位自由基光引发均聚反应,在离子液体中仅包含一种聚离子液体(PIL),且使用氮气代替空气气氛。由于消除了溶解氧引起的抑制作用,氮气气氛下的聚合反应具有更高的分子量、更低的临界溶胶 - 凝胶浓度和更强的机械性能。更重要的是,得益于独特的丝瓜状微观结构以及强大的内部离子相互作用、长PIL链的缠结和液晶域,离子凝胶表现出特殊的光学各向异性、超拉伸性(>8000%)、高断裂强度(高达16.52 MPa)、高韧性(高达39.22 MJ/m),并具有超快自愈、超强粘附和优异的形状记忆性能。由于其优异的拉伸性和良好的导电应变响应性,所制备的离子凝胶可轻松应用于用于运动检测的高性能柔性可穿戴传感器。因此,本文提供了一种有效的途径和开发方法,以制备可用于广泛的柔性和可穿戴电子产品的高拉伸性导电液晶离子凝胶/弹性体。

相似文献

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Tough and stretchable ionogels by in situ phase separation.原位相分离法制备坚韧、可拉伸的离子凝胶。
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