Tough Hydrogels with Robust Wet Adhesion via Entropy‐Driven Hydrogen Bond Reorganization

H Hongyu Chen X Ximin Yuan (Zhejiang Key Laboratory of Additive Manufacturing Technology and Equipment College of Mechanical Engineering Zhejiang University Hangzhou China) M Mengrong Du (School of Engineering Huzhou University Huzhou China) Q Qilin Wu W Weicheng Kong (Zhejiang Key Laboratory of Additive Manufacturing Technology and Equipment College of Mechanical Engineering Zhejiang University Hangzhou China) Z Zhou Zhu M Mengjie Wu (Key Laboratory of the Ministry of Education for Advanced Catalysis Materials, Institute of Physical Chemistry, College of Chemistry and Materials Science) Y Yong He (Department of Pathogen Biology, School of Basic Medical Sciences, Anhui Medical University)

Abstract

ABSTRACT High‐performance hydrogels for tissue repair should provide both mechanical reinforcement and interfacial adhesion. However, conventional strengthening strategies typically rely on hydrogen bonding within the network, whose inherent bonding energy and restricted configurational freedom intrinsically limit chain mobility at the interface, ultimately weakening wet adhesion. To overcome the strength‐adhesion trade‐off caused by hydrogen bond distribution, this study proposes an entropy‐driven strategy that decouples the spatial distribution of hydrogen bonds to simultaneously achieve high bulk strength and robust wet adhesion. Starting from a conformationally disordered and high‐entropy mixture, the hydrogen bonds then concentrate in the bulk through entropy‐favored reconfiguration to strengthen the network. The bulk‐interface energetic and conformational mismatch in turn triggers a localized phase separation, which reduces interfacial entropy to form a hydrogen bond‐depleted nanoconfined water layer. This layer permits dynamic polymer‐tissue hydrogen bonding, enabling robust wet adhesion without loss of bulk strength. The resulting hydrogel can rapidly conform to tissue surfaces, forming a high modulus structure (∼13 MPa) that withstands hydrostatic pressures up to 368 mmHg. It achieves sealing beyond physiological limits and maintains stable adhesion, demonstrating effective repair in models of skin injury, oral mucosal ulceration, and cardiac bleeding.

Article Details

Volume / Issue Vol. 38, Issue 31
Published June 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

H

Hongyu Chen

X

Ximin Yuan

Zhejiang Key Laboratory of Additive Manufacturing Technology and Equipment College of Mechanical Engineering Zhejiang University Hangzhou China

M

Mengrong Du

School of Engineering Huzhou University Huzhou China

Q

Qilin Wu

W

Weicheng Kong

Zhejiang Key Laboratory of Additive Manufacturing Technology and Equipment College of Mechanical Engineering Zhejiang University Hangzhou China

Z

Zhou Zhu

M

Mengjie Wu

Key Laboratory of the Ministry of Education for Advanced Catalysis Materials, Institute of Physical Chemistry, College of Chemistry and Materials Science

Y

Yong He

Department of Pathogen Biology, School of Basic Medical Sciences, Anhui Medical University