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首页> 外文期刊>Journal of nanoscience and nanotechnology >The evolution of advanced mechanical defenses and potential technological applications of diatom shells
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The evolution of advanced mechanical defenses and potential technological applications of diatom shells

机译:硅藻壳的先进机械防护技术的发展和潜在技术应用

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Diatoms are unicellular algae with silicified cell walls, which exhibit a high degree of symmetry and complexity. Their diversity is extraordinarily high; estimates suggest that about 105 marine and limnic species may exist. Recently, it was shown that diatom frustules are mechanically resilient, statically sophisticated structures made of a tough glass-like composite. Consequently, to break the frustules, predators have to generate large forces and invest large amounts of energy. In addition, they need feeding tools (e.g., mandibles or gastric mills) which are hard, tough, and resilient enough to resist high stress and wear, which are bound to occur when they feed on biomineralized objects such as diatoms or other biomineralized protists. Indeed, many copepods feeding on diatoms possess, in analogy to the enamelcoated teeth of mammals, amazingly complex, silicalaced mandibles. The highly developed adaptations both to protect and to break diatoms indicate that selection pressure is high to optimize material properties and the geometry of the shells to achieve mechanical strength of the overall structure. This paper discusses the mechanical challenges which force the development of mechanical defenses, and the structural components of the diatom frustules which indicate that evolutionary optimization has led to mechanically sophisticated structures. Understanding the diatom frustule from the nanometer scale up to the whole shell will provide new insights to advanced combinations of nanostructured composite ceramic materials and lightweight architecture for technological applications.
机译:硅藻是具有硅化细胞壁的单细胞藻类,具有高度的对称性和复杂性。它们的多样性非常高;据估计,可能存在约105种海洋和林科物种。最近,研究表明硅藻壳是一种由坚韧的玻璃状复合材料制成的机械弹性,静态复杂的结构。因此,为打破障碍,掠食者必须产生巨大的力量并投入大量的能量。此外,他们需要足够坚硬,坚韧和有弹性的饲喂工具(例如下颌骨或胃磨),以抵抗高应力和磨损,当以诸如硅藻或其他生物矿化生物的生物矿化物体为食时,必定会发生这种情况。的确,许多以硅藻为食的pe足类动物具有与哺乳动物的珐琅质牙齿类似的惊人的复杂的硅酸盐下颌骨。保护和破坏硅藻的高度开发适应表明,选择压力很高,以优化材料性能和壳体的几何形状,以实现整体结构的机械强度。本文讨论了迫使机械防御发展的机械挑战,以及硅藻壳的结构组成,这些结构表明进化优化导致了机械复杂的结构。了解从纳米尺度到整个外壳的硅藻壳,将为纳米复合陶瓷材料和轻质结构在技术应用方面的先进组合提供新的见解。

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