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Langmuir· 2026Q1

Water-Triggered Pre-activation of Hydrogel Patch for Instant Robust Bioadhesion

Fan Gao, Peng-Hui Wang, Jia-Ning Hu, Yan Jie Wang et al.

Short summary

A novel acrylic acid–methacrylic acid copolymer hydrogel patch (AM gel) is pre-activated by water, enabling instant and robust adhesion to skin via complementary interactions between ionized carboxylic acid groups and stratum corneum proteins.

AI-generated from the title and abstract; the full text is not read.

Key points

  • A simple one-pot synthesis produces an acrylic acid–methacrylic acid copolymer hydrogel patch (AM gel).
  • Water exposure ionizes the gel's carboxylic acid groups, pre-activating it for adhesion.
  • The activated gel forms strong, durable bonds with skin proteins via complementary interfacial interactions.
  • The AM gel achieves a shear adhesive strength of 174.99 ± 6.55 kPa and maintains adhesion for over 30 minutes.
  • The material exhibits robust mechanical properties, excellent biocompatibility, and high compliance with soft tissues.

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract Bioadhesives represent promising alternatives to sutures and staples for skin wound repair; however, existing systems are often limited by complex fabrication processes, poor adhesion under wet conditions, insufficient mechanical strength, and biocompatibility concerns. To address these challenges, we propose a prehydration–activated, dry-state adhesion strategy. Herein, an acrylic acid–methacrylic acid copolymer hydrogel patch (AM gel) is fabricated via a simple one-pot synthesis and exhibits a unique hydration-triggered activation behavior. Upon exposure to water, the carboxylic acid (–COOH) groups inherent in the AM gel ionize, releasing protons and generating a highly reactive interfacial state, thereby converting the material into a preactivated hydrogel. Upon subsequent contact with skin, the activated gel forms strong, durable adhesion to stratum corneum proteins bearing amino (–NH2) groups through complementary interfacial interactions. As a result, the AM hydrogel achieves an exceptional shear adhesive strength of 174.99 ± 6.55 kPa and maintains stable adhesion for over 30 min. In addition, the AM gel exhibits robust mechanical properties, excellent biocompatibility, and high compliance with soft tissues, highlighting its potential as a reliable, low-irritation adhesive platform for wound closure and wearable medical devices.

The authors' abstract, as published at the source. Langmuir, 2026 · DOI ↗

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Field: Rehabilitation

RehabilitationMedicine