Biomimetic Gradual Helical Structure for Enhancing the Strength and Toughness of Fiber‐Reinforced Composites

Z Zhengqi Zhang B Boyu Cui (1State Key Laboratory of Experimental Hematology, National Clinical Research Center for Blood Diseases, Haihe Laboratory of Cell Ecosystem, Institute of Hematology and Blood Diseases Hospital, Chinese Academy of Medical Sciences and Peking Union Medical College, Tianjin, China) Y Yanan Sun J Jun Shan (Key Laboratory of Bio‐based Material Science and Technology (Ministry of Education) Northeast Forestry University Harbin 150040 P. R. China) S Shuang Li S Shuo Hao (Key Laboratory of Bio‐based Material Science and Technology (Ministry of Education) Northeast Forestry University Harbin 150040 P. R. China) W Weidong Shan (Key Laboratory of Bio‐based Material Science and Technology (Ministry of Education) Northeast Forestry University Harbin 150040 P. R. China) W Weihong Wang Y Yongming Song (Key Laboratory of Bio‐based Material Science and Technology (Ministry of Education) Northeast Forestry University Harbin 150040 P. R. China) Y Yiqun Fang T Tian Liu (Key Laboratory of Photochemical Conversion and Optoelectronic Materials)

Abstract

Abstract Multilayered helical arrangements are commonly observed in natural creatures to enhance their strength and toughness. A biomimicry of such an intricate structure has thus far been challenging. Herein, a green, facile, and versatile design strategy is proposed for transitional units. The proposed strategy is applied to develop a gradual helical (GH) structure that can reinforce thermoplastics using bamboo fibers (≈20 cm). A transitional unit is constructed through a combination of rolling and twisting. Following hot pressing, a biomimetic fiber‐reinforced composite with a GH structure is fabricated. The GH structure is made up of 3D helical fibers with a gradual variation in the helical angle from the surface to the core, achieving minimal staggered angles and bridging of different fiber layers. Owing to stress decomposition and transfer as well as the coupling effect of the helical fibers, the GH structure exhibits outstanding tensile and bending strengths. Moreover, owing to the staggered arrangement, bridging, and deformation behavior of the fibers, the GH structure achieves remarkable impact toughness through crack deflection and fiber uncoiling. The GH structure and transitional unit assembly strategy can facilitate the development of advanced composites with superior mechanical properties through an environmentally friendly, simple, and versatile structural design approach.

Article Details

Volume / Issue Vol. 37, Issue 28
Published July 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

Z

Zhengqi Zhang

B

Boyu Cui

1State Key Laboratory of Experimental Hematology, National Clinical Research Center for Blood Diseases, Haihe Laboratory of Cell Ecosystem, Institute of Hematology and Blood Diseases Hospital, Chinese Academy of Medical Sciences and Peking Union Medical College, Tianjin, China

Y

Yanan Sun

J

Jun Shan

Key Laboratory of Bio‐based Material Science and Technology (Ministry of Education) Northeast Forestry University Harbin 150040 P. R. China

S

Shuang Li

S

Shuo Hao

Key Laboratory of Bio‐based Material Science and Technology (Ministry of Education) Northeast Forestry University Harbin 150040 P. R. China

W

Weidong Shan

Key Laboratory of Bio‐based Material Science and Technology (Ministry of Education) Northeast Forestry University Harbin 150040 P. R. China

W

Weihong Wang

Y

Yongming Song

Key Laboratory of Bio‐based Material Science and Technology (Ministry of Education) Northeast Forestry University Harbin 150040 P. R. China

Y

Yiqun Fang

T

Tian Liu

Key Laboratory of Photochemical Conversion and Optoelectronic Materials