Dynamic Organic–Inorganic Interpenetrating Nanonetwork for Stiff and Durable Flexible Material

Y Yan He W Weifeng Fang (Department of Chemistry & Institute of Fundamental Transdisciplinary Research Zhejiang University Hangzhou Zhejiang China) K Kai Yin Y Yueqi Zhao C Chenxin Song (Department of Orthopaedic Surgery Sir Run Run Shaw Hospital Zhejiang University School of Medicine & Zhejiang Key Laboratory of Mechanism Research and Precision Repair of Orthopaedic Trauma and Aging Diseases Hangzhou Zhejiang China) T Tianren Liu Z Zaiqiang Ma (Shandong Institute of Nonmetallic Materials) J Jian Zhang R Ruikang Tang (Department of Chemistry and Institute of Fundamental Transdisciplinary Research) Z Zhaoming Liu (Department of Chemistry)

Abstract

ABSTRACT The longstanding trade‐off between stiffness and durable flexibility has limited the performance envelope of structural materials, constraining their application in demanding engineering fields. Here, we reveal an alternative organic–inorganic hybrid architecture to integrate these contradictory properties. Inspired by interpenetrating polymer networks, we interpenetrate an inorganic nanonetwork into the organic network via polymerization of inorganic ionic oligomers. In this way, an organic–inorganic (bacterial cellulose‐calcium phosphate) interpenetrating nanonetwork was constructed, and notably, a dynamically reversible inter‐network bonding was discovered under external force. This dynamic organic–inorganic interpenetrating nanonetwork (DIN) leads to a composite material with both high stiffness and high energy dissipation ability during deformation, exhibiting metal‐like bending rigidity while sustaining 20 000 bending cycles without fatigue fracture. This demonstrates a resolution to stiffness and durable flexibility integration in structural materials. Moreover, the DIN structure exhibits resistance to harsh environments, including extreme temperatures (−196°C to 200°C) and high humidity (90% RH). Combined with its lightweight, electromagnetic transparency, and naturally derived components, DIN‐based composites represent promising candidates for next‐generation stiff yet durable flexible protective structural materials. This work extends the polymer‐inspired approach to synthesize non‐classical inorganic structures, while broadening the understanding of organic–inorganic composite architectures in integrating distinct material properties.

Article Details

Volume / Issue Vol. 38, Issue 40
Published July 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

Y

Yan He

W

Weifeng Fang

Department of Chemistry & Institute of Fundamental Transdisciplinary Research Zhejiang University Hangzhou Zhejiang China

K

Kai Yin

Y

Yueqi Zhao

C

Chenxin Song

Department of Orthopaedic Surgery Sir Run Run Shaw Hospital Zhejiang University School of Medicine & Zhejiang Key Laboratory of Mechanism Research and Precision Repair of Orthopaedic Trauma and Aging Diseases Hangzhou Zhejiang China

T

Tianren Liu

Z

Zaiqiang Ma

Shandong Institute of Nonmetallic Materials

J

Jian Zhang

R

Ruikang Tang

Department of Chemistry and Institute of Fundamental Transdisciplinary Research

Z

Zhaoming Liu

Department of Chemistry