Related Experiment Video
Updated: Jul 18, 2026

Design and Evaluation of Smart Glasses for Food Intake and Physical Activity Classification
Published on: February 14, 2018
Multi-functional zwitterionic glycerylphosphorylcholine hydrogel for human motion detection and human-machine
Xing Gao1, Chufan Yan1, Yutong Wang1
1School of Kinesiology and Health, Graduate School, Harbin Sport University, Harbin 150008, PR China.
Abstract:
Zwitterionic hydrogels have emerged as promising candidates for next-generation epidermal sensors owing to their inherent biocompatibility, ionic conductivity, and environmental responsiveness. However, achieving a single system that simultaneously integrates good anti-freezing capability, high ionic conductivity, and autonomous self-healing ability remains a big challenge. Here, we report a glycerylphosphorylcholine (GPC)-based, multifunctional zwitterionic hydrogel reinforced with cellulose nanofibers (CNFs) featuring a honeycomb-like hierarchically porous structure. GPC endows the hydrogel with good anti-freezing capability by retaining non-freezable water, while enabling rapid ion transport through ion-dipole interactions. CNFs serve as a mechanically robust scaffold and facilitate good stretchability and resilience. The resulting hydrogel exhibits an exceptional stretchability of 5540 % and a high ionic conductivity of 19.7 S m-1. Moreover, the presence of multiple reversible physical crosslinks imparts strong interfacial adhesion and rapid self-healing. When integrated into wearable electronics as self-adhering strain sensors, the hydrogel enables reliable human motion detection, real-time electrophysiological signal monitoring, and robotic control through human-machine interfaces, even in subzero environments. Additionally, the hydrogel demonstrates inherent antibacterial activity, further expanding its potential in bio-interfacing applications. This work presents a versatile design strategy for engineering next-generation zwitterionic hydrogels toward multifunctional, low-temperature-tolerant, and self-healing wearable systems.
More Related Videos
08:17An Additive Manufacturing Technique for the Facile and Rapid Fabrication of Hydrogel-based Micromachines with Magnetically Responsive Components
Published on: July 18, 2018
08:15Capturing Dynamic Finger Gesturing with High-resolution Surface Electromyography and Computer Vision
Published on: March 28, 2025