论文标题

具有纹理梯度的生物矿物质在功能上是通过应力离域加强的分级生物陶瓷

Biominerals with Texture Gradients are Functionally Graded Bioceramics Toughened by Stress Delocalization

论文作者

Wallis, David, Harris, Joe, Böhm, Corinna F., Wang, Di, Zavattieri, Pablo, Feldner, Patrick, Merle, Benoit, Pipich, Vitaliy, Hurle, Katrin, Leupold, Simon, Hansen, Lars N., Marin, Frédéric, Wolf, Stephan E.

论文摘要

生物矿化生物因其产生表现出特殊晶体学控制的结构的能力而广泛注意到并进行了广泛的研究。首先,是生物体(例如海耕种或双壳类生物)产生几乎引起关注的几乎单一晶体生物晶体。相反,具有看似无序的多晶生物武器的生物矿物化生物相对未研究。然而,黑色的珍珠牡蛎中的结晶订单Pinctada Margaritifera表明,具有不同晶体纹理的生物矿物质是一类功能分级的材料类别。由于晶体的方向依赖性机械性能,不可避免地会导致年轻模量变化。 Pinctada Margaritifera的情况表明,具有这种晶体学梯度的生物陶瓷因应力界定和降低的压力强度因子而增强,表现优于非级别的对应物。这些发现表明,由于其多晶和变化的晶体纹理而被视为有序的众多生物官员可以被视为具有迄今未识别的新兴机械性能的分级材料。基本的设计原理非常简单,适用于各种晶体材料类别,因此可以用作将来生物启发的功能材料的蓝图。

Biomineralizing organisms are widely noted and extensively studied due to their ability to generate structures exhibiting exceptional crystallographic control. Primarily, it is the organisms, such as sea-urchins or bivalves, that generate nearly single-crystalline biocrystals that have attracted attention. In contrast, biomineralizing organisms with seemingly disordered polycrystalline bio-armor have been left relatively unstudied. However, the crystalline ordering in the black-lipped pearl oyster, Pinctada margaritifera, reveals that biominerals with varying crystal textures are an unrecognized class of functionally graded materials. Changing crystal textures inevitably cause a variation in Young modulus due to the orientation-dependent mechanical properties of crystals. The case of Pinctada margaritifera demonstrates that bioceramics with such crystallographical gradients are toughened by stress delocalization and reduced stress intensity factors, outperforming non-graded counterparts. These findings suggest that a multitude of biominerals, which are perceived as poorly ordered because of their polycrystallinity and changing crystal textures, may be considered as graded materials with hitherto unidentified emergent mechanical properties. The underlying design principle is remarkably simple and applicable to a wide range of crystalline material classes and may thus serve as a blueprint for future bioinspired functional materials.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源