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生物成因碳酸钙的弹性常数。

Elastic constants of biogenic calcium carbonate.

机构信息

B CUBE - Center for Molecular Bioengineering, Technische Universität Dresden, Dresden, Germany.

Leibniz Institute for Solid State and Materials Research, Dresden, Germany.

出版信息

J Mech Behav Biomed Mater. 2024 Jul;155:106570. doi: 10.1016/j.jmbbm.2024.106570. Epub 2024 May 11.

Abstract

Living organisms form complex mineralized composite architectures that perform a variety of essential functions. These materials are commonly utilized for load-bearing purposes such as structural stability and mechanical strength in combination with high toughness and deformability, which are well demonstrated in various highly mineralized molluscan shell ultrastructures. Here, the mineral components provide the general stiffness to the composites, and the organic interfaces play a key role in providing these biogenic architectures with mechanical superiority. Although numerous studies employed state-of-the-art methods to measure and/or model and/or simulate the mechanical behavior of molluscan shells, our understanding of their performance is limited. This is partially due to the lack of the most fundamental knowledge of their mechanical characteristics, particularly, the anisotropic elastic properties of the mineral components and of the tissues they form. In fact, elastic constants of biogenic calcium carbonate, one of the most common biominerals in nature, is unknown for any organism. In this work, we employ the ultrasonic pulse-echo method to report the elasticity tensor of two common ultrastructural motifs in molluscan shells: the prismatic and the nacreous architectures made of biogenic calcite and aragonite, respectively. The outcome of this research not only provides information necessary for fundamental understanding of biological materials formation and performance, but also yields textbook knowledge on biogenic calcium carbonate required for future structural/crystallographic, theoretical and computational studies.

摘要

生物体形成复杂的矿化复合材料结构,执行各种基本功能。这些材料通常用于承载目的,如结构稳定性和机械强度,同时具有高韧性和可变形性,这在各种高度矿化的软体动物壳超结构中得到了很好的证明。在这里,矿物质成分提供了复合材料的一般刚度,而有机界面在为这些生物基结构提供机械优势方面发挥着关键作用。尽管许多研究采用了最先进的方法来测量和/或建模和/或模拟软体动物壳的机械行为,但我们对它们的性能的理解是有限的。这部分是由于缺乏对其机械特性的最基本的了解,特别是矿物质成分和它们形成的组织的各向异性弹性特性。事实上,生物碳酸钙的弹性常数,即自然界中最常见的生物矿之一,对于任何生物体都是未知的。在这项工作中,我们采用超声波脉冲回波法来报告软体动物壳中两种常见超结构图案的弹性张量:由生物方解石和文石制成的棱柱和珍珠层结构。这项研究的结果不仅提供了对生物材料形成和性能的基本理解所必需的信息,而且为未来的结构/结晶学、理论和计算研究提供了生物碳酸钙的教材知识。

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