具有皮肤样压电离子动力学的仿生离子弹性体,由自约束的多相互作用网络实现

IF 19 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Zhiyue Fang, Lei Wang, Cuiyuan Liang, Jinhua Qiu, Tongye Zhang, Donghua Xu, Dianpeng Qi, Shifang Luan, Hengchong Shi
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引用次数: 0

摘要

软离子弹性体在模拟人体皮肤的多种功能方面引起了相当大的研究兴趣。然而,这些离子弹性体很难同时实现可控的离子动力学和其他基本性能,如自愈能力和适当的机械鲁棒性。在此,受人体皮肤中的压电蛋白和整合素的启发,通过多约束相互作用网络制备了具有皮肤样压电离子动力学的硫辛酸(TA)衍生离子弹性体。该仿生网络是通过在聚硫化物(聚(TA))中引入二烯共聚体和锂盐填料来构建的,产生了许多动态相互作用(各种氢键和锂键)。这些动态相互作用可以将离子与多硫化物结合,并在外部压力刺激下被破坏,从而实现可控的离子泵送行为。这种独特的设计理念使这些离子弹性体能够选择性地响应压力(最佳样品具有152倍的信号强度,灵敏度为49.53-1.13 kPa−1),同时具有防泄漏,可回收性和可降解性。此外,这些相互作用还可以作为牺牲键和自愈位点,协同提高各方面的性能,产生2.47 MPa的高模量和98%的出色自愈效率。相信这项工作可以为下一代“绿色”柔性传感器中使用可持续材料创造新的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Bioinspired Ionic Elastomer with Skin-Like Piezo-Ionic Dynamics Enabled by a Self-Confined Multi-Interaction Network

Bioinspired Ionic Elastomer with Skin-Like Piezo-Ionic Dynamics Enabled by a Self-Confined Multi-Interaction Network

Bioinspired Ionic Elastomer with Skin-Like Piezo-Ionic Dynamics Enabled by a Self-Confined Multi-Interaction Network

Soft ionic elastomers have attracted considerable research interest in mimicking the multiple functions of human skin. However, these ionic elastomers struggle to simultaneously achieve controllable ion dynamics and other essential performance, such as self-healing ability and appropriate mechanical robustness. Herein, bioinspired by Piezo proteins and integrins in human skin, thioctic acid (TA)-derived ionic elastomers with skin-like piezo-ionic dynamics are fabricated via a multi-confined interaction network. This bionic network is constructed by introducing a diene comonomer and lithium salt filler into polysulfides (poly (TA)), generating many dynamic interactions (various hydrogen bonds and lithium bonds). These dynamic interactions can bind ions to the polysulfides and be destroyed under external pressure stimulation, achieving controllable ion pumping behavior. This unique design concept enables these ionic elastomers to selectively respond to pressure (the optimal sample exhibits 152 times signal intensity with a sensitivity of 49.53-1.13 kPa−1), along with leak prevention, recyclability, and degradability. Besides, these interactions also serve as sacrificial bonds and self-healing sites to synergistically enhance all aspects of performance, yielding a high modulus of 2.47 MPa and outstanding self-healing efficiency of 98%. It is believed that this work could create a new approach for utilizing sustainable materials in next-generation “green” flexible sensors.

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来源期刊
Advanced Functional Materials
Advanced Functional Materials 工程技术-材料科学:综合
CiteScore
29.50
自引率
4.20%
发文量
2086
审稿时长
2.1 months
期刊介绍: Firmly established as a top-tier materials science journal, Advanced Functional Materials reports breakthrough research in all aspects of materials science, including nanotechnology, chemistry, physics, and biology every week. Advanced Functional Materials is known for its rapid and fair peer review, quality content, and high impact, making it the first choice of the international materials science community.
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