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应变诱导的各向异性纳米复合离子凝胶中的相分离及离子传导的机械调制

Strain-Induced Phase Separation and Mechanomodulation of Ionic Conduction in Anisotropic Nanocomposite Ionogels.

作者信息

Li Shuaijie, Cheng Yan, Zhu Hongnan, Xu Min, Lv Hongying, Wang Zhuoer, Liu Guoming, Song Hongzan

机构信息

College of Chemistry and Materials Science, Hebei University, Baoding, Hebei Province 071002, P. R. China.

CAS Key Laboratory of Engineering Plastics, Beijing National Laboratory for Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2024 Mar 13;16(10):13103-13113. doi: 10.1021/acsami.3c19167. Epub 2024 Feb 29.

Abstract

Ionogels have great potential for the development of tissue-like, soft, and stretchable ionotronics. However, conventional isotropic ionogels suffer from poor mechanical properties, low efficient force transmission, and tardy mechanoelectric response, hindering their practical utility. Here, we propose a simple one-step method to fabricate bioinspired anisotropic nanocomposite ionogels based on a combination of strain-induced phase separation and mechanomodulation of ionic conduction in the presence of attapulgite nanorods. These ionogels show high stretchability (747.1% strain), tensile strength (6.42 MPa), Young's modulus (83.49 MPa), and toughness (18.08 MJ/m). Importantly, the liquid crystalline domain alignment-induced microphase separation and ionic conductivity enhancement during stretching endow these ionogels with an unusual mechanoelectric response and dual-programmable shape-memory properties. Moreover, the anisotropic structure, good elasticity, and unique resistance-strain responsiveness give the ionogel-based strain sensors high sensitivity, rapid response time, excellent fatigue resistance, and unique waveform-discernible strain sensing, which can be applied to real-time monitoring of human motions. The findings offer a promising way to develop bioinspired anisotropic ionogels to modulate the microstructure and properties for practical applications in advanced ionotronics.

摘要

离子凝胶在开发类似组织的、柔软且可拉伸的离子电子器件方面具有巨大潜力。然而,传统的各向同性离子凝胶存在机械性能差、力传递效率低和机电响应迟缓等问题,阻碍了它们的实际应用。在此,我们提出一种简单的一步法,基于在凹凸棒石纳米棒存在下的应变诱导相分离和离子传导的机械调制来制备受生物启发的各向异性纳米复合离子凝胶。这些离子凝胶具有高拉伸性(应变达747.1%)、拉伸强度(6.42兆帕)、杨氏模量(83.49兆帕)和韧性(18.08兆焦/立方米)。重要的是,拉伸过程中液晶域排列诱导的微相分离和离子电导率增强赋予这些离子凝胶不同寻常的机电响应和双可编程形状记忆特性。此外,各向异性结构、良好弹性和独特的电阻 - 应变响应性使基于离子凝胶的应变传感器具有高灵敏度、快速响应时间、出色的抗疲劳性和独特的波形可分辨应变传感能力,可应用于人体运动的实时监测。这些发现为开发受生物启发的各向异性离子凝胶以调节微观结构和性能用于先进离子电子器件的实际应用提供了一条有前景的途径。

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