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含半纤维素纳米粒子的离子水凝胶的制备具有高强度、自修复、耐紫外线性,并将其用作应变传感器和非对称压力传感器。

Preparation of Hemicellulose Nanoparticle-Containing Ionic Hydrogels with High Strength, Self-Healing, and UV Resistance and Their Applications as Strain Sensors and Asymmetric Pressure Sensors.

机构信息

College of Material Engineering, Fujian Agriculture and Forestry University, Fuzhou, Fujian Province 350002, China.

Department of Chemical Engineering, University of New Brunswick, Fredericton, New Brunswick E3B 5A3, Canada.

出版信息

Biomacromolecules. 2022 Jun 13;23(6):2272-2279. doi: 10.1021/acs.biomac.1c01640. Epub 2022 Apr 29.

Abstract

Smart functional fillers can significantly enhance the comprehensive properties of ionic hydrogels, such as their mechanical properties, which are key features of hydrogels in wearable sensor applications. As a plant-derived natural polymer, hemicellulose can serve as smart functional fillers. In this study, tannic acid-modified hemicellulose nanoparticles (TA@HC) and Fe were used in the preparation of PAA/TA@HC/Fe hydrogels. The addition of TA@HC and Fe in the sodium persulfate (SPS) and acrylic acid (AA) polymerization system resulted in a fast gelation process that was completed within a short time (as short as 30 s) at room temperature. The catechol-rich TA and Fe system allows for quick activation of SPS to produce free radicals, generating abundant hydroxyl groups in a short period of time, which was responsible for the fast gelation. Furthermore, due to the TA@HC effect and the dynamic catechol (TA)-Fe redox system, the PAA/TA@HC/Fe hydrogel exhibited excellent mechanical properties with an exceptionally high strain (as high as 5600%), adhesiveness, rapid and efficient self-healing ability, and reproducible self-adhesion onto various substrates. More importantly, asymmetric adhesive PAA/TA@HC/Fe hydrogels were prepared by selective Fe coating of the upper hydrogel surface to render the top surface nonadhesive so that the same hydrogel with different adhesiveness between the upper and bottom surfaces was obtained. The asymmetric adhesive hydrogel design permits the adhesive side to fit comfortably to the skin and the nonadhesive side showing anti-interference against various different pollutant materials, accurately serving as a pressure sensor.

摘要

智能功能填料可以显著提高离子水凝胶的综合性能,例如其机械性能,这是水凝胶在可穿戴传感器应用中的关键特征。作为一种植物衍生的天然聚合物,半纤维素可以作为智能功能填料。在这项研究中,使用单宁酸改性的半纤维素纳米粒子(TA@HC)和 Fe 来制备 PAA/TA@HC/Fe 水凝胶。在过硫酸铵(SPS)和丙烯酸(AA)聚合体系中加入 TA@HC 和 Fe,导致快速凝胶化过程,在室温下短时间内(短至 30 秒)即可完成。富含邻苯二酚的 TA 和 Fe 体系允许 SPS 快速激活,产生大量的羟基,在短时间内产生大量的羟基,这是快速凝胶化的原因。此外,由于 TA@HC 的作用和动态邻苯二酚(TA)-Fe 氧化还原体系,PAA/TA@HC/Fe 水凝胶表现出优异的机械性能,具有极高的应变(高达 5600%)、粘附性、快速高效的自修复能力和可重复的自粘附到各种基底上的能力。更重要的是,通过选择性地在水凝胶表面涂覆 Fe 制备不对称粘附 PAA/TA@HC/Fe 水凝胶,使上表面不具有粘附性,从而获得上下表面具有不同粘附性的相同水凝胶。不对称粘附水凝胶的设计允许粘附侧舒适地贴合皮肤,非粘附侧显示出对各种不同污染物材料的抗干扰性,准确地用作压力传感器。

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