A skin-mimicking multifunctional hydrogel via hierarchical, reversible noncovalent interactions

Xingkui Guo, Songlin Zhang*, Shubham Patel, Xiaolu Sun, You-Liang Zhu, Zechang Wei, Rongguo Wang, Xiaodong He, Zuankai Wang*, Cunjiang Yu*, Swee Ching Tan*

*Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

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Abstract

Artificial skin is essential for bionic robotics, facilitating human skin–like functions such as sensation, communication, and protection. However, replicating a skin-matched all-in-one material with excellent mechanical properties, self-healing, adhesion, and multimodal sensing remains a challenge. Herein, we developed a multifunctional hydrogel by establishing a consolidated organic/metal bismuth ion architecture (COMBIA). Benefiting from hierarchical reversible noncovalent interactions, the COMBIA hydrogel exhibits an optimal combination of mechanical and functional properties, particularly its integrated mechanical properties, including unprecedented stretchability, fracture toughness, and resilience. Furthermore, these hydrogels demonstrate superior conductivity, optical transparency, freezing tolerance, adhesion capability, and spontaneous mechanical and electrical self-healing. These unified functions render our hydrogel exceptional properties such as shape adaptability, skin-like perception, and energy harvesting capabilities. To demonstrate its potential applications, an artificial skin using our COMBIA hydrogel was configured for stimulus signal recording, which, as a promising soft electronics platform, could be used for next-generation human-machine interfaces. Copyright © 2025 The Authors, some rights reserved.
Original languageEnglish
Article numbereadv8523
JournalScience Advances
Volume11
Issue number20
Online published16 May 2025
DOIs
Publication statusPublished - May 2025
Externally publishedYes

Funding

S.C.T. acknowledges the Ministry of Education Singapore Academic Research Fund (Tier 2 grant no. A-0005415-01-00). S.Z. acknowledges the support from the National Natural Science Foundation of China (52403156), Science and Technology Commission of Shanghai Municipality (24ZR1406700 and 24PJA010), and Fudan University (JIH2328001Y). R.W. and X.H. acknowledge the National Natural Science Foundation of China (no. 52403156).

Publisher's Copyright Statement

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