Harnessing Biofilm Scaffold for Structurally Adaptative Slippery Surfaces with Integrated Antifouling and Anticorrosion Properties

X Xiangyu Li R Runqing Zhang (State Key Laboratory of Digital Steel, School of Materials Science and Engineering Northeastern University Shenyang 110819 P.R. China) J Jingru Zhang Q Qike Li (State Key Laboratory of Digital Steel, School of Materials Science and Engineering Northeastern University Shenyang 110819 P.R. China) Z Zhiqun Yu (State Key Laboratory of Digital Steel, School of Materials Science and Engineering) Z Zishuai Zhou (State Key Laboratory of Digital Steel, School of Materials Science and Engineering Northeastern University Shenyang 110819 P.R. China) S Shiman Lin Z Zhong Li (State Key Laboratory of Clean and Efficient Coal Utilization, College of Chemistry and Chemical Engineering) M Miaomiao Cui W Wenjie Zhao L Liping Wang (School of Materials and Energy) F Fuhui Wang (State Key Laboratory of Digital Steel, School of Materials Science and Engineering) D Dake Xu (State Key Laboratory of Digital Steel, School of Materials Science and Engineering)

Abstract

AbstractArtificial liquid‐repellent surfaces are highly desirable to combat pervasive biofouling and corrosion in biological environments. However, existing strategies often suffer from slow binding kinetics and harsh fabrication conditions, hindering the concurrent integration of liquid repellency, universal adhesion, and robust flexibility. Herein, we report that it is possible to engineer microbial biofilms as eco‐friendly, cohesive, and flexible materials for omniphobic slippery coatings fulfilling all these requirements. Unlike conventional synthetic slippery coatings requiring laborious surface pretreatments, biofilm sheets formed on demand assemble a durable nanotextured framework on diverse substrates with multiple material categories and surface topologies, serving as hydrophobic lubricant reservoirs. Employing this renewable material enables the scalable and sustainable coating production. The resulting optically transparent and highly flexible coatings manifest exceptional self‐cleaning properties, readily shedding both waterborne and oily liquids over a broad viscosity range. Notably, the synergy between the corrosion‐protective extracellular matrix and nonstick slipping motion confers unprecedented antibiofouling efficacy and corrosion resistance. This study offers a distinctive perspective on harnessing ubiquitous native biofilms as biomaterials for self‐adaptive coatings, facilitating tailored functionality across broad applications.

Article Details

Volume / Issue Vol. 64, Issue 23
Published June 02, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

X

Xiangyu Li

R

Runqing Zhang

State Key Laboratory of Digital Steel, School of Materials Science and Engineering Northeastern University Shenyang 110819 P.R. China

J

Jingru Zhang

Q

Qike Li

State Key Laboratory of Digital Steel, School of Materials Science and Engineering Northeastern University Shenyang 110819 P.R. China

Z

Zhiqun Yu

State Key Laboratory of Digital Steel, School of Materials Science and Engineering

Z

Zishuai Zhou

State Key Laboratory of Digital Steel, School of Materials Science and Engineering Northeastern University Shenyang 110819 P.R. China

S

Shiman Lin

Z

Zhong Li

State Key Laboratory of Clean and Efficient Coal Utilization, College of Chemistry and Chemical Engineering

M

Miaomiao Cui

W

Wenjie Zhao

L

Liping Wang

School of Materials and Energy

F

Fuhui Wang

State Key Laboratory of Digital Steel, School of Materials Science and Engineering

D

Dake Xu

State Key Laboratory of Digital Steel, School of Materials Science and Engineering