纳克尔和纳克尔启发材料:历史背景,定义,制造技术和差距
Naim Sedira1,2, João Castro-Gomes1,2, Jorge Pinto1,3
1C-MADE, The Centre of Materials and Civil Engineering for Sustainability, Universidade da Beira Interior (UBI), 6201-001 Covilhã, Portugal.
Biomimetics (Basel, Switzerland)
|February 26, 2026
概括
在贝中发现的,激发了先进的仿生材料. 它独特的生物矿物化工艺,由有机矩阵控制,为3D打印等现代应用提供了卓越的机械性能.
科学领域:
- 材料科学 材料科学 材料科学
- 生物矿物化 生物矿物化
- 生物模拟学是一种生物模拟学.
背景情况:
- 和贝已经从古老的装饰品过渡到现代的仿生灵感.
- 由于其等级结构和有机-无机相互作用,天然呈现出了显著的机械性能.
研究的目的:
- 审查当前关于纳克尔成分和生物矿物化的知识.
- 探索有机矩阵在控制晶体形成中的作用.
- 讨论纳克尔灵感的材料合成和应用.
主要方法:
- 关于纳克拉的历史和当代研究的回顾.
- 纳克尔的组成和生物矿物化过程的分析.
- 检查仿生制造技术和材料特性.
主要成果:
- 骨形成涉及无形碳酸 (ACC) 转化为阿拉贡石,由蛋白质指导.
- 有机矩阵对于控制晶体核,生长和多态选择至关重要.
- 使用3D打印等方法合成的NACRE灵感复合材料表现出增强的机械性能.
结论:
- 了解天然的形成是开发先进生物仿真材料的关键.
- 现代的制造技术使得能够创建具有量身定制的属性的纳克尔灵感结构.
- 纳克尔启发的材料对各种工程应用具有重大潜力.
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