Compliance for Resistance: The Intrinsic Extraordinary Isotropic Anti‐Fatigue Performance of Fish Bladder

Z Ziyu Shao (Key Laboratory of Biomass Chemical Engineering of Ministry of Education College of Chemical and Biological Engineering Zhejiang University Hangzhou China) Z Zhihui Dong (Key Laboratory of Biomass Chemical Engineering of Ministry of Education College of Chemical and Biological Engineering Zhejiang University Hangzhou China) Z Zijian Xu Z Zeye Wang (Key Laboratory of Biomass Chemical Engineering of Ministry of Education College of Chemical and Biological Engineering Zhejiang University Hangzhou China) M Mingrui Wu (Key Laboratory of Biomass Chemical Engineering of Ministry of Education College of Chemical and Biological Engineering Zhejiang University Hangzhou China) N Nifang Zhao M Meng Li W Weiwei Gao (Aiiso Yufeng Li Family Department of Chemical and Nano Engineering, Shu and K.C. Chien and Peter Farrell Collaboratory) H Hao Bai (Institute of Ecology, College of Urban and Environmental Sciences, and State Key Laboratory of Vegetation Structure, Function and Construction, Peking University)

Abstract

ABSTRACT Fatigue failure remains a critical challenge for soft materials used in biomedical implants and soft robotics. Existing strategies, including stiff reinforcement and microstructural alignment, can suppress crack growth but often introduce anisotropy and poor resistance to multidirectional loading. In addition, a persistent orders‐of‐magnitude disparity remains between fracture toughness and fatigue threshold of synthetic soft materials. Here, the fish bladder of silver carp, characterized by a multilayered hierarchical fibrous architecture, is shown to exhibit extraordinary isotropic fatigue resistance (∼6000 J·m − 2 ) approaching its fracture toughness. This behavior originates from a “compliance for resistance” mechanism that couples dynamic fiber straightening and rotation, sacrificial bond breakage and reassociation, and layer‐specific fiber reorientation with the resulting interfacial sliding to dissipate energy under cyclic loading. Guided by these principles, a biohybrid hydrogel is designed to reproduce this multiscale anti‐fatigue mechanism, achieving a high fatigue threshold (>3000 J·m − 2 ) together with robust antifouling performance. These results uncover fundamental design principles of fatigue‐resistant biological soft tissues and provide a general strategy for engineering durable soft materials.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 20, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

Z

Ziyu Shao

Key Laboratory of Biomass Chemical Engineering of Ministry of Education College of Chemical and Biological Engineering Zhejiang University Hangzhou China

Z

Zhihui Dong

Key Laboratory of Biomass Chemical Engineering of Ministry of Education College of Chemical and Biological Engineering Zhejiang University Hangzhou China

Z

Zijian Xu

Z

Zeye Wang

Key Laboratory of Biomass Chemical Engineering of Ministry of Education College of Chemical and Biological Engineering Zhejiang University Hangzhou China

M

Mingrui Wu

Key Laboratory of Biomass Chemical Engineering of Ministry of Education College of Chemical and Biological Engineering Zhejiang University Hangzhou China

N

Nifang Zhao

M

Meng Li

W

Weiwei Gao

Aiiso Yufeng Li Family Department of Chemical and Nano Engineering, Shu and K.C. Chien and Peter Farrell Collaboratory

H

Hao Bai

Institute of Ecology, College of Urban and Environmental Sciences, and State Key Laboratory of Vegetation Structure, Function and Construction, Peking University