TY - JOUR
T1 - Hydrogel-Interfaced Active Rehabilitation System
T2 - From Materials Design and Architecture to Applications
AU - Chen, Haofeng
AU - Si, Ranzi
AU - Luo, Yibing
AU - Gu, Yiqun
AU - Yang, Bo Ru
AU - Yu, Qiuhua
AU - Tao, Kai
AU - Wang, Chuhuai
AU - Huo, Fengwei
AU - Wu, Jin
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Driven by the pursuit of superior therapeutic efficacy and patient autonomy, healthcare is shifting toward proactive “active rehabilitation”. Conductive composite hydrogels, featuring tissue-mimetic mechanics and multi-modal sensing capabilities, have emerged as ideal bio-electronic interfaces for these systems. This review systematically provides a comprehensive overview of hydrogel-interfaced active rehabilitation systems, progressing from fundamental material design and system architecture to applications. We first outline strategies to enhance hydrogels' biocompatibility, mechanical properties, environmental robustness, self-adhesion, and conductivity. Next, we delineate the closed-loop architecture comprising perception, decision, and execution layers, and trace two end-to-end demonstrations from ionic-to-electronic transduction through algorithmic decoding to physical feedback. Furthermore, we highlight applications in limb motor recovery, swallowing, language, and cognitive rehabilitation, and neural, bone, and tendon regeneration. Finally, we discuss persistent challenges in signal decoupling, material trade-offs, energy autonomy, and clinical validation, and envision future directions toward AI-driven personalization, variable-stiffness hydrogels, self-powered integration, and standardized benchmarking.
AB - Driven by the pursuit of superior therapeutic efficacy and patient autonomy, healthcare is shifting toward proactive “active rehabilitation”. Conductive composite hydrogels, featuring tissue-mimetic mechanics and multi-modal sensing capabilities, have emerged as ideal bio-electronic interfaces for these systems. This review systematically provides a comprehensive overview of hydrogel-interfaced active rehabilitation systems, progressing from fundamental material design and system architecture to applications. We first outline strategies to enhance hydrogels' biocompatibility, mechanical properties, environmental robustness, self-adhesion, and conductivity. Next, we delineate the closed-loop architecture comprising perception, decision, and execution layers, and trace two end-to-end demonstrations from ionic-to-electronic transduction through algorithmic decoding to physical feedback. Furthermore, we highlight applications in limb motor recovery, swallowing, language, and cognitive rehabilitation, and neural, bone, and tendon regeneration. Finally, we discuss persistent challenges in signal decoupling, material trade-offs, energy autonomy, and clinical validation, and envision future directions toward AI-driven personalization, variable-stiffness hydrogels, self-powered integration, and standardized benchmarking.
KW - active rehabilitation
KW - closed-loop systems
KW - conductive hydrogels
KW - human–machine interface
KW - wearable bio-electronics
UR - https://www.scopus.com/pages/publications/105047851776
U2 - 10.1002/adma.74742
DO - 10.1002/adma.74742
M3 - 文献综述
AN - SCOPUS:105047851776
SN - 0935-9648
JO - Advanced Materials
JF - Advanced Materials
ER -