Sandcastle Worm Cement‐Mimicking Underwater Adhesives via Liquid–Liquid Phase Separation and Auto‐Catalyzed Network Strengthening

L Libin Wang K Kaiwen Chen (Department of Chemical and Biological Engineering) S Shuya Wang (Institute of Molecular Plus, Haihe Laboratory of Sustainable Chemical Transformations) S Sheng Zhang T Tengfei Tian (MOE Key Laboratory of Bio‐Intelligent Manufacturing Dalian Key Laboratory of Artificial Organ and Regenerative Medicine School of Bioengineering Dalian University of Technology Dalian Liaoning P. R. China) Q Qiwei Ying (MOE Key Laboratory of Bio‐Intelligent Manufacturing Dalian Key Laboratory of Artificial Organ and Regenerative Medicine School of Bioengineering Dalian University of Technology Dalian Liaoning P. R. China) Q Qifan Wang F Fei Shao C Chengze Li (MOE Key Laboratory of Bio‐Intelligent Manufacturing Dalian Key Laboratory of Artificial Organ and Regenerative Medicine School of Bioengineering Dalian University of Technology Dalian Liaoning P. R. China) Y Yi Shen (College of Chemistry, Chemical Engineering and Materials Science, and State Key Laboratory of Radiation Medicine and Protection) H Huanan Wang (Research Center for Molecular Recognition and Synthesis, Department of Chemistry, Fudan University, 220 Handan Lu, Shanghai 200433, China)

Abstract

ABSTRACT Achieving robust underwater adhesion remains challenging due to the interference of interfacial water and insufficient cohesion within conventional adhesives. Inspired by the sandcastle worm's cement forming via liquid–liquid phase separation (LLPS), we developed a novel class of tannic acid/polyethylene glycol/Laponite (TA/PEG/Lap, TPL) composite adhesives to effectively enhance interfacial water repulsion and underwater adhesion. TA and PEG self‐assembled into a dynamic adhesive coacervate matrix via LLPS, while Laponite nanoclays were subsequently introduced as reinforcement fillers and catalysts to trigger polyphenol oxidation, thereby transforming TPL from dynamic soft gel to mechanically robust solid. Specifically, the initially self‐healing TPL can adapt to the irregular surface topography by repelling interfacial water and forming adhesion, thereafter self‐cure to strengthen the mechanical interlocking with irregular substrate surfaces, and eventually realize robust underwater adhesion. Leveraging the transient network reversibility and self‐driven crosslinking stability, the TPL formulations can be processed into injectable, sprayable, coatable, or scaffold forms, offering robust adhesion, fault tolerance, eco‐compatibility, long‐term stability, fire resistance, and antibacterial activity. Overall, this work establishes a paradigm shift in bioinspired design of robust underwater adhesives and highlights the potential of TPL systems for multi‐scenario and multi‐functional applications, including acute hemostasis, soil fixation, infrastructure crack repair, and other underwater sealing tasks.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 22, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

L

Libin Wang

K

Kaiwen Chen

Department of Chemical and Biological Engineering

S

Shuya Wang

Institute of Molecular Plus, Haihe Laboratory of Sustainable Chemical Transformations

S

Sheng Zhang

T

Tengfei Tian

MOE Key Laboratory of Bio‐Intelligent Manufacturing Dalian Key Laboratory of Artificial Organ and Regenerative Medicine School of Bioengineering Dalian University of Technology Dalian Liaoning P. R. China

Q

Qiwei Ying

MOE Key Laboratory of Bio‐Intelligent Manufacturing Dalian Key Laboratory of Artificial Organ and Regenerative Medicine School of Bioengineering Dalian University of Technology Dalian Liaoning P. R. China

Q

Qifan Wang

F

Fei Shao

C

Chengze Li

MOE Key Laboratory of Bio‐Intelligent Manufacturing Dalian Key Laboratory of Artificial Organ and Regenerative Medicine School of Bioengineering Dalian University of Technology Dalian Liaoning P. R. China

Y

Yi Shen

College of Chemistry, Chemical Engineering and Materials Science, and State Key Laboratory of Radiation Medicine and Protection

H

Huanan Wang

Research Center for Molecular Recognition and Synthesis, Department of Chemistry, Fudan University, 220 Handan Lu, Shanghai 200433, China