Shaanxi Provincial Key Laboratory of Papermaking Technology and Specialty Paper Development, National Demonstration Center for Experimental Light Chemistry Engineering Education, Key Laboratory of Paper Based Functional Materials of China National Light Industry, Shaanxi University of Science and Technology, Xi'an 710021, China.
Shaanxi Provincial Key Laboratory of Papermaking Technology and Specialty Paper Development, National Demonstration Center for Experimental Light Chemistry Engineering Education, Key Laboratory of Paper Based Functional Materials of China National Light Industry, Shaanxi University of Science and Technology, Xi'an 710021, China.
Carbohydr Polym. 2024 Jan 1;323:121385. doi: 10.1016/j.carbpol.2023.121385. Epub 2023 Sep 12.
Ionically conductive hydrogels are an ideal alternative material for applications in wearable flexible sensors to monitor human health. However, producing hydrogels with both high sensitivity and excellent versatility is difficult, and their transparency and UV-blocking properties are significantly limited. Here, with mussel- and gecko-inspired biomimicry, all-biomass-based hydrogels (OGTCGs) with self-adhesive, self-healing, transparent, UV-filtering, frost-resistant, environmentally stable, antibacterial, and biocompatible properties were designed and constructed via a simple one-step approach with a water/glycerol system and borax added without any crosslinker using synergistic dynamic covalent and noncovalent chemistry. The transparency of the OGTCG hydrogel reached 81.06 %, while the added tannic acid-coated cellulose nanocrystal (TA@CNC) induced a UV-blocking effect. The OGTCG hydrogel exhibited a high toughness (218.67 kPa) and modulus (100.32 kPa) reinforced by TA@CNC. The OGTCG hydrogel showed good self-healing abilities with an efficiency of over 90 % after 6 h. In a binary solvent system, the OGTCG hydrogel had environmental stability, as illustrated by density functional theory (DFT), greatly broadening its application range. Moreover, it had an electrical conductivity of 2.3 mS cm and a sensitivity of 3.97. Therefore, with its rapid response and real-time monitoring capabilities, the OGTCG hydrogel shows great potential for applications in monitoring human health.
离子导电水凝胶是可用于监测人体健康的可穿戴柔性传感器的理想替代材料。然而,制备具有高灵敏度和优异多功能性的水凝胶具有挑战性,其透明度和紫外线阻挡性能受到显著限制。在这里,通过受贻贝和壁虎启发的仿生学,设计并构建了一种基于生物质的全水凝胶(OGTCG),它具有自粘性、自修复、透明、紫外线过滤、抗冻、环境稳定、抗菌和生物相容性等特性,通过在添加硼砂的水/甘油体系中一步法简单合成,无需任何交联剂,利用协同动态共价和非共价化学。OGTCG 水凝胶的透明度达到 81.06%,而添加的单宁酸包覆的纤维素纳米晶体(TA@CNC)产生了紫外线阻挡效果。OGTCG 水凝胶具有高韧性(218.67 kPa)和模量(100.32 kPa),由 TA@CNC 增强。OGTCG 水凝胶具有良好的自修复能力,经过 6 小时后效率超过 90%。在二元溶剂体系中,OGTCG 水凝胶具有环境稳定性,如密度泛函理论(DFT)所示,大大拓宽了其应用范围。此外,它的电导率为 2.3 mS cm,灵敏度为 3.97。因此,OGTCG 水凝胶具有快速响应和实时监测能力,在监测人体健康方面具有很大的应用潜力。