Min Gong, Meiqi Chen, Jiaqing Zhou, A Linjing, Jiaru Han, Liancong Yue, Xiang Lin, Fengxian Gao, Liang Zhang, Dongrui Wang
Hydrogel fibers hold significant potential for wearable sensing and human–machine interfaces, yet their widespread application is limited by intricate manufacturing, rapid dehydration, and poor freezing resistance. A simple, green, and scalable wet-spinning strategy is presented here for the fabrication of nanocomposite organohydrogel fibers that integrate high conductivity, mechanical strength, and environmental tolerance. By employing sodium alginate as a biocompatible matrix and Ti 3 C 2 T x MXene nanosheets as conductive fillers, uniform fibers are achieved through rapid ionic cross-linking in a CaCl 2 coagulation bath, followed by glycerol-assisted solvent exchange to ensure operational stability. The resulting fiber exhibits balanced performance, including a conductivity of 0.6 mS/cm, tensile strength of 0.5 MPa, and fracture elongation of 96%. The organohydrogel also demonstrates remarkable environmental adaptability, retaining 63% of its initial weight after 7 days at 25 °C and 60% relative humidity while maintaining flexibility at temperatures as low as −60 °C. When knit into textiles, the fiber functions as a sensitive wearable sensor capable of capturing both large-scale movements and fine physiological signals such as electrocardiogram and electromyogram signals across different environments. This work provides a scalable and sustainable route to high-performance, textile-integrable wearable electronics suitable for long-term use under diverse environmental conditions.