A Protein‐Managed Hydrogel Biomimicked by Insect Cuticle Enabling Ultra‐Durable Impact Resistance

K Kai Wu (BNLMS, College of Chemistry and Molecular Engineering) C Chengbang Lu (Agricultural Genomics Institute at Shenzhen Chinese Academy of Agricultural Sciences Shenzhen 518000 China) F Fenghou Yuan (MOE Key Laboratory of Bio-Intelligent Manufacturing, School of Bioengineering) B Binghui Song K Kewen Lei Z Zeyu Wang H Haoying Wang (Department of Chemistry) L Liang Peng H Huitang Qi H Hongchao Ji (Agricultural Genomics Institute at Shenzhen Chinese Academy of Agricultural Sciences Shenzhen 518000 China) U U K. Cheang (Department of Mechanical and Energy Engineering Southern University of Science and Technology Shenzhen 518055 China) H Huawei Zhang T Taolin Sun (South China Advanced Institute for Soft Matter Science and Technology South China University of Technology Guangzhou 510641 China) J Ji Liu T Tian Liu (Key Laboratory of Photochemical Conversion and Optoelectronic Materials) X Xiangyu Liang (Agricultural Genomics Institute at Shenzhen Chinese Academy of Agricultural Sciences Shenzhen 518000 China)

Abstract

Abstract The insect cuticle exhibits a diverse array of intricate microstructures, each possessing distinctly different mechanical properties, ranging from rigid components such as head capsules and mandibles to softer structures like larval integuments and intersegmental membranes. While the variations in mechanical properties are attributed to differences in structural protein composition, the specific proteins involved and their corresponding mechanisms remain largely elusive. Here, Ostrinia furnacalis cuticular protein hypothetical‐2 ( Of  CPH‐2) is identified as a highly abundant key structural protein that is closely linked to the development of the endocuticle within the head capsule of Ostrinia furnacalis . Utilizing a straightforward yet effective binary solvent‐induced strategy involving chitin and Of CPH‐2, the hierarchically structured endocuticle is successfully replicated. Rational engineering of the lamellar structure formation and energy dissipation, surprisingly and reasonably facilitated by Of CPH‐2, contributes synergistically to an unprecedented ultra‐durable impact resistance (≈23,534 J·m −2 , ≈1,032 × increase). This structure parallels that of the natural lamellar endocuticle found in head capsules, enabling exceptional structural stability under localized mechanical stresses. Applying this biomimetic cuticle in intelligent agricultural drones has significantly enhanced their sustainability, easy‐to‐process, and stability (≈600% × increase) within visual recognition systems for pests, underscoring its promising potential as protective gear akin to natural cuticles.

Article Details

Volume / Issue Vol. 38, Issue 22
Published April 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (16)

K

Kai Wu

BNLMS, College of Chemistry and Molecular Engineering

C

Chengbang Lu

Agricultural Genomics Institute at Shenzhen Chinese Academy of Agricultural Sciences Shenzhen 518000 China

F

Fenghou Yuan

MOE Key Laboratory of Bio-Intelligent Manufacturing, School of Bioengineering

B

Binghui Song

K

Kewen Lei

Z

Zeyu Wang

H

Haoying Wang

Department of Chemistry

L

Liang Peng

H

Huitang Qi

H

Hongchao Ji

Agricultural Genomics Institute at Shenzhen Chinese Academy of Agricultural Sciences Shenzhen 518000 China

U

U K. Cheang

Department of Mechanical and Energy Engineering Southern University of Science and Technology Shenzhen 518055 China

H

Huawei Zhang

T

Taolin Sun

South China Advanced Institute for Soft Matter Science and Technology South China University of Technology Guangzhou 510641 China

J

Ji Liu

T

Tian Liu

Key Laboratory of Photochemical Conversion and Optoelectronic Materials

X

Xiangyu Liang

Agricultural Genomics Institute at Shenzhen Chinese Academy of Agricultural Sciences Shenzhen 518000 China