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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Mussel-Inspired Cellulose Nanocomposite Tough Hydrogels with Synergistic Self-Healing, Adhesive, and Strain-Sensitive Properties
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Mussel-Inspired Cellulose Nanocomposite Tough Hydrogels with Synergistic Self-Healing, Adhesive, and Strain-Sensitive Properties

机译:贻贝激发纤维素纳米复合材料坚硬的水凝胶,具有协同自愈,粘合剂和应变敏感性

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摘要

The remarkable progress in efforts to prepare conductive self-healing hydrogels mimicking human skin's functions has been witnessed in recent years. However, it remains a great challenge to develop an integrated conductive gel combining excellent self-healing and mechanical properties, which is derived from their inherent compromise between the dynamic cross-links for healing and steady cross-links for mechanical strength. In this work, we design a tough, self-healing, and self-adhesive ionic gel by constructing synergistic multiple coordination bonds among tannic acid-coated cellulose nanocrystals (TA@CNCs), poly(acrylic acid) chains, and metal ions in a covalent polymer network. The incorporated TA@CNC acts as a dynamic connected bridge in the hierarchically porous network mediated by multiple coordination bonds, endowing the ionic gels the superior mechanical performance. Reversible nature of dynamic coordination interactions leads to excellent recovery property as well as reliable mechanical and electrical self-healing property without any assistance of external stimuli. Intriguingly, the ionic gels display durable and repeatable adhesiveness ascribed to the presence of catechol groups from the incorporated tannic acid, which can be adhered directly on human skin without inflammatory response and residual. Additionally, the ionic gels with a great strain sensitivity can be employed as flexible strain sensors to monitor and distinguish both large motions (e.g., joints bending) and subtle motions (e.g., pulse and breath), which enable us to analyze the data on the user interface of smart phone via programmable wireless transmission. This work provides a new prospect for the design of the biocompatible cellulose-based hydrogels with stretchable, self-adhesive, self-healing, and strain-sensitive properties for potential applications in wearable electronic sensors and healthcare monitoring.
机译:近年来一直在寻求制备人类皮肤职能模仿人类皮肤职能的努力的显着进展。然而,开发综合导电凝胶仍然是一个巨大的挑战,这些凝胶结合了优异的自我愈合和机械性能,这源于动态交叉链路之间的固有折衷,用于愈合和稳定的机械强度的交叉链路。在这项工作中,我们通过构建单宁酸纤维素纳米晶体(TA @ CNC),聚(丙烯酸)链和金属离子构建协同多元配合键来设计坚韧的自愈和自粘离子凝胶。共价聚合物网络。 Connorated TA @ CNC作为由多个配位键介导的分层多孔网络中的动态连接桥,赋予离子凝胶优异的机械性能。动态协调相互作用的可逆性导致优异的回收性能以及可靠的机械和电气自愈性,而无需任何外部刺激的帮助。令人兴趣的是,离子凝胶显示于来自掺入的单宁酸的儿茶酚基团的耐用且可重复的粘合性,其可以直接粘附在人体皮肤上而不会炎症反应和残余物。另外,具有良好应变灵敏度的离子凝胶可以用作柔性应变传感器,以监测和区分大型运动(例如,关节弯曲)和微妙的运动(例如,脉冲和呼吸),这使我们能够分析数据通过可编程无线传输智能手机的用户界面。这项工作为设计的生物相容性纤维素基水凝胶的设计提供了一种具有可拉伸,自粘,自愈的水凝胶,以及用于可穿戴电子传感器和医疗监测的潜在应用的潜在应用。

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    Beijing Forestry Univ Beijing Key Lab Lignocellulos Chem 35 Tsinghua East Rd Beijing 100083 Peoples R China;

    Beijing Forestry Univ Beijing Key Lab Lignocellulos Chem 35 Tsinghua East Rd Beijing 100083 Peoples R China;

    Beijing Forestry Univ Beijing Key Lab Lignocellulos Chem 35 Tsinghua East Rd Beijing 100083 Peoples R China;

    Beijing Forestry Univ Beijing Key Lab Lignocellulos Chem 35 Tsinghua East Rd Beijing 100083 Peoples R China;

    Beijing Forestry Univ Beijing Key Lab Lignocellulos Chem 35 Tsinghua East Rd Beijing 100083 Peoples R China;

    Beijing Forestry Univ Beijing Key Lab Lignocellulos Chem 35 Tsinghua East Rd Beijing 100083 Peoples R China;

    Beijing Forestry Univ Beijing Key Lab Lignocellulos Chem 35 Tsinghua East Rd Beijing 100083 Peoples R China;

    Beijing Univ Chem Technol Ctr Adv Elastomer Mat State Key Lab Organ Inorgan Composites Beijing 100029 Peoples R China;

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  • 正文语种 eng
  • 中图分类 工程材料学 ;
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