Ngo Hang Thi, Kwon Kiok, Shin Seunghan
Green Chemistry & Materials Group, Korea Institute of Industrial Technology (KITECH), Cheonan, Chungnam 31056, Republic of Korea; Department of Green Process and Energy System Engineering, University of Science & Technology (UST), Daejeon 34113, Republic of Korea.
Green Chemistry & Materials Group, Korea Institute of Industrial Technology (KITECH), Cheonan, Chungnam 31056, Republic of Korea.
Carbohydr Polym. 2025 Aug 1;361:123605. doi: 10.1016/j.carbpol.2025.123605. Epub 2025 Apr 18.
Hydrogels have attracted significant attention in wearable electronics owing to their flexibility, biocompatibility, and responsiveness. However, simultaneously achieving strong adhesion, high stretchability, anti-freezing capability, and long-term stability remains challenging. Herein, we present a multifunctional organohydrogel synthesized via one-pot radical polymerization of sulfobetaine methacrylate (SBMA) and acrylic acid (AA) in the presence of biomass-derived carboxymethyl cellulose (CMC). The incorporation of CMC established abundant hydrogen bonding and secondary crosslinking interactions, thereby enhancing both mechanical strength and adhesion. Furthermore, the use of a binary ethylene glycol/deionized water solvent and lithium triflate significantly improved environmental tolerance and durability. The resulting organohydrogel exhibits exceptional stretchability (a fracture strain of 2729 % and a tensile stress of 218 kPa), strong adhesion (447 N/m on glass, 197 N/m on pigskin), superior anti-freezing capability (remains unfrozen at -70 °C), and stable mass retention (95 % after one week). It also demonstrates robust performance under repeated loading-unloading cycles (over 500 cycles), ensuring reliable, long-term signal stability. These balanced and enduring properties make the organohydrogel a promising candidate for wearable strain sensors, enabling precise and stable human motion monitoring even under extreme conditions.
水凝胶因其柔韧性、生物相容性和响应性而在可穿戴电子设备中备受关注。然而,同时实现强粘附性、高拉伸性、抗冻能力和长期稳定性仍然具有挑战性。在此,我们展示了一种多功能有机水凝胶,它是通过甲基丙烯酰基磺酸甜菜碱(SBMA)和丙烯酸(AA)在生物质衍生的羧甲基纤维素(CMC)存在下的一锅自由基聚合反应合成的。CMC的加入建立了丰富的氢键和二次交联相互作用,从而提高了机械强度和粘附力。此外,使用二元乙二醇/去离子水溶剂和三氟甲磺酸锂显著提高了环境耐受性和耐久性。所得的有机水凝胶表现出优异的拉伸性(断裂应变2729%,拉伸应力218kPa)、强粘附性(在玻璃上为447N/m,在猪皮上为197N/m)、卓越的抗冻能力(在-70°C下仍不结冰)和稳定的质量保留率(一周后为95%)。它在反复加载-卸载循环(超过500次循环)下也表现出稳健的性能,确保了可靠的长期信号稳定性。这些平衡且持久的特性使有机水凝胶成为可穿戴应变传感器的有前途的候选材料,即使在极端条件下也能实现精确且稳定的人体运动监测。