材料科学
形状记忆合金
韧性
几何形状
机制(生物学)
纳米技术
图层(电子)
蓝图
工程制图
结构材料
曲率
机械工程
结构工程
计算机科学
复合材料
蛇头
工作(物理)
薄脆饼
仿生材料
钥匙(锁)
作者
Junyan Guo,Ping Yuan,Xiangyin Pan,Zhuanfei Liu,Zeyao Fu,Zeyao Fu,Yinbo Zhu,Zhengyi Fu,Zhengyi Fu,Zhaoyong Zou
标识
DOI:10.1002/adfm.202532022
摘要
ABSTRACT The northern snakehead (Channa argus), an apex freshwater predator, possesses teeth that are a masterclass in biological design, achieving exceptional puncture resistance and autonomous self‐sharpening with minimalist material use. Here, through a multiscale investigation combining structural characterization, chemical mapping, and mechanical analysis, we decipher the key architectural principles underlying this evolutionary innovation. We reveal a thin enameloid cap with a functionally graded structure: a highly aligned, fluorapatite‐rich outer layer provides superior hardness (5.0 GPa), while a disordered inner layer enhances toughness through crack deflection. This efficient “hard‐soft” laminate is synergistically supported by a unique “mountain‐peak”‐shaped dentin‐enameloid junction (DEJ) that dissipates stress, and a dentin core reinforced with aligned collagen fibers and a hierarchical canal network for energy absorption. Crucially, we demonstrate that the tooth's physiological curvature is not merely morphological but functional, guiding asymmetric wear on the concave side to continuously regenerate a sharp apex—a mechanism directly visualized via in situ compression 3D tomography. This work establishes the northern snakehead tooth as a model for efficient puncture, offering fundamental design blueprints for the next generation of biomimetic materials, particularly for lightweight, self‐sharpening, and puncture‐resistant devices.
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