Ultraviolet Laser‐Induced Biomimetic Surface Texturing of Carbon Fiber Reinforced Polymers: Mechanisms Governing Adhesive Performance

ABSTRACT Interfacial regulation is critical for improving the adhesive performance of carbon fiber reinforced polymers (CFRP). Inspired by the leg microstructures of Tettigonia viridissima, this study proposes an ultraviolet nanosecond laser‐based fiber‐fracture biomimetic surface texturing strategy for biomimetic surface texturing of CFRP. The relationship among laser parameters, texture geometries, and surface wettability was established to achieve controllable fabrication of microtextures. Principal component analysis revealed that the arithmetic mean height Sa was the key descriptor for surface characterization. Orthogonal experimental optimization produced uniform biomimetic textures using a laser power of 15 W, scanning speed of 40 mm/s, and line spacing of 0.04 mm. Compared with conventional textures, the biomimetic hexagonal texture enhanced adhesive spreading and mechanical interlocking, thereby improving interfacial bonding. The water contact angle decreased by 41.69%, and the interfacial shear strength increased by 68.23% compared with the unprocessed surface. Failure analysis showed a transition from interfacial failure to cohesive failure within CFRP. Finite element analysis (FEA) demonstrated that biomimetic textures reduced peak interfacial tensile and peel stresses. This study clarifies the mechanism of ultraviolet laser induced texturing in regulating surface characteristics and adhesive performance, providing theoretical guidance for designing high performance adhesive joints.

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Publication Details

Journal
Polymer Composites
Published
2026-09-18
DOI
https://doi.org/10.1002/pc.71625
Primary Topic
Mechanical Behavior of Composites
Type
article
Field-Weighted Citation Impact
0.00

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article

Ultraviolet Laser‐Induced Biomimetic Surface Texturing of Carbon Fiber Reinforced Polymers: Mechanisms Governing Adhesive Performance

Zihao Li, Ziwen Tang, Jun Hu, Kangmei Li et al.
Polymer Composites
Mechanical Behavior of Composites
article

Ultraviolet Laser‐Induced Biomimetic Surface Texturing of Carbon Fiber Reinforced Polymers: Mechanisms Governing Adhesive Performance

Zihao Li, Ziwen Tang, Jun Hu, Kangmei Li, Jiana Gan, Qingzhe Du
article en

Abstract

ABSTRACT Interfacial regulation is critical for improving the adhesive performance of carbon fiber reinforced polymers (CFRP). Inspired by the leg microstructures of Tettigonia viridissima, this study proposes an ultraviolet nanosecond laser‐based fiber‐fracture biomimetic surface texturing strategy for biomimetic surface texturing of CFRP. The relationship among laser parameters, texture geometries, and surface wettability was established to achieve controllable fabrication of microtextures. Principal component analysis revealed that the arithmetic mean height Sa was the key descriptor for surface characterization. Orthogonal experimental optimization produced uniform biomimetic textures using a laser power of 15 W, scanning speed of 40 mm/s, and line spacing of 0.04 mm. Compared with conventional textures, the biomimetic hexagonal texture enhanced adhesive spreading and mechanical interlocking, thereby improving interfacial bonding. The water contact angle decreased by 41.69%, and the interfacial shear strength increased by 68.23% compared with the unprocessed surface. Failure analysis showed a transition from interfacial failure to cohesive failure within CFRP. Finite element analysis (FEA) demonstrated that biomimetic textures reduced peak interfacial tensile and peel stresses. This study clarifies the mechanism of ultraviolet laser induced texturing in regulating surface characteristics and adhesive performance, providing theoretical guidance for designing high performance adhesive joints.

Polymer Composites
Donghua University (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 19%
Mechanical Behavior of Composites
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