{"title":"柔性应变传感器用非共价交联的坚固可回收聚(聚氨酯-尿素)离子凝胶","authors":"Hao Chen, Jiawei Wang, Chenlin Pan, Qingxiang He, Jiangna Guo, Mingzu Zhang, Jinlin He* and Peihong Ni, ","doi":"10.1021/acsapm.5c0068310.1021/acsapm.5c00683","DOIUrl":null,"url":null,"abstract":"<p >Stretchable ionic conductors (SICs) have gained widespread applications in energy storage devices, soft robotics, and ionic skins due to their exceptional stretchability, ionic conductivity, and transparency. Among these, ionogels have attracted significant attention due to the thermal stability, nonvolatility, and electrochemical stability of ionic liquids. Ionic liquids impart ionic conductivity to the ionogels. However, their presence may influence the mechanical properties of the polymer through plasticizing effects or noncovalent interactions. Consequently, optimizing the mechanical properties of ionogels to maintain the ionic conductivity while ensuring adequate mechanical strength is a significant concern among researchers. In this study, a poly(urethane-urea) material (APU<sub><i>x</i></sub>) containing amide and quaternary ammonium salt groups was designed and synthesized. The amide groups within APU<sub><i>x</i></sub>, serving as hydrogen bonding cross-linking points, confer excellent mechanical properties on the material by strengthening its internal network structure. In addition, the APU<sub><i>x</i></sub> elastomer possesses self-healing ability and recyclability due to the dynamic function of hydrogen bonding as well as antibacterial function of the quaternary ammonium salt group. On the other hand, the ionic liquid [EMIM][HSO<sub>4</sub>] was introduced to enhance the ionic conductivity. 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引用次数: 0
摘要
可拉伸离子导体(SICs)由于其优异的可拉伸性、离子电导率和透明度,在能量存储设备、软机器人和离子皮肤中得到了广泛的应用。其中,离子凝胶因其热稳定性、非挥发性和离子液体的电化学稳定性而备受关注。离子液体使离子凝胶具有离子导电性。然而,它们的存在可能通过增塑作用或非共价相互作用影响聚合物的机械性能。因此,优化电离胶的机械性能,在保证足够机械强度的同时保持离子电导率是研究人员关注的一个重要问题。本研究设计并合成了一种含有酰胺和季铵盐基团的聚氨酯-尿素材料(APUx)。APUx中的酰胺基团作为氢键交联点,通过强化其内部网络结构赋予材料优异的机械性能。此外,由于氢键的动态功能以及季铵盐基的抗菌功能,APUx弹性体具有自愈能力和可回收性。另一方面,引入离子液体[EMIM][HSO4]来提高离子电导率。[EMIM][HSO4]通过氢键和静电相互作用与聚合物相互作用,生成离子凝胶材料(APU3.5/30),该材料具有良好的离子电导率(2.21 mS m-1)、优异的断裂伸长率(2358.5%)、高强度(11 MPa)和高韧性(78.6 MJ m-3),在高性能柔性可穿戴电子器件中具有良好的应用前景。
Robust and Recyclable Poly(urethane-urea) Ionogels with Noncovalent Cross-linkings for Flexible Strain Sensors
Stretchable ionic conductors (SICs) have gained widespread applications in energy storage devices, soft robotics, and ionic skins due to their exceptional stretchability, ionic conductivity, and transparency. Among these, ionogels have attracted significant attention due to the thermal stability, nonvolatility, and electrochemical stability of ionic liquids. Ionic liquids impart ionic conductivity to the ionogels. However, their presence may influence the mechanical properties of the polymer through plasticizing effects or noncovalent interactions. Consequently, optimizing the mechanical properties of ionogels to maintain the ionic conductivity while ensuring adequate mechanical strength is a significant concern among researchers. In this study, a poly(urethane-urea) material (APUx) containing amide and quaternary ammonium salt groups was designed and synthesized. The amide groups within APUx, serving as hydrogen bonding cross-linking points, confer excellent mechanical properties on the material by strengthening its internal network structure. In addition, the APUx elastomer possesses self-healing ability and recyclability due to the dynamic function of hydrogen bonding as well as antibacterial function of the quaternary ammonium salt group. On the other hand, the ionic liquid [EMIM][HSO4] was introduced to enhance the ionic conductivity. The [EMIM][HSO4] interacts with the polymer through hydrogen bonding and electrostatic interactions, giving rise to an ionogel material (APU3.5/30) that features favorable ionic conductivity (2.21 mS m–1), excellent elongation at break (2358.5%), high strength (11 MPa) and toughness (78.6 MJ m–3), thus holding promising application prospects in high-performance flexible wearable electronic devices.
期刊介绍:
ACS Applied Polymer Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics, and biology relevant to applications of polymers.
The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates fundamental knowledge in the areas of materials, engineering, physics, bioscience, polymer science and chemistry into important polymer applications. The journal is specifically interested in work that addresses relationships among structure, processing, morphology, chemistry, properties, and function as well as work that provide insights into mechanisms critical to the performance of the polymer for applications.