Department of Mechanical Engineering, Virginia Polytechnic Institute of Technology and State University, Blacksburg, VA, 24060, USA.
Adv Sci (Weinh). 2022 May;9(14):e2103524. doi: 10.1002/advs.202103524. Epub 2022 Mar 22.
Biomineralized composites, which are usually composed of microscopic mineral building blocks organized in 3D intercrystalline organic matrices, have evolved unique structural designs to fulfill mechanical and other biological functionalities. While it has been well recognized that the intricate architectural designs of biomineralized composites contribute to their remarkable mechanical performance, the structural features within and corresponding mechanical properties of individual mineral building blocks are often less appreciated in the context of bio-inspired structural composites. The mineral building blocks in biomineralized composites exhibit a variety of salient intracrystalline structural features, such as, organic inclusions, inorganic impurities (or trace elements), crystalline features (e.g., amorphous phases, single crystals, splitting crystals, polycrystals, and nanograins), residual stress/strain, and twinning, which significantly modify the mechanical properties of biogenic minerals. In this review, recent progress in elucidating the intracrystalline structural features of three most common biomineral systems (calcite, aragonite, and hydroxyapatite) and their corresponding mechanical significance are discussed. Future research directions and corresponding challenges are proposed and discussed, such as the advanced structural characterizations and formation mechanisms of intracrystalline structures in biominerals, amorphous biominerals, and bio-inspired synthesis.
生物矿化复合材料通常由微观的矿物质构建块组成,这些构建块以 3D 晶间有机基质的形式组织在一起,具有独特的结构设计,以满足机械和其他生物功能。虽然人们已经认识到生物矿化复合材料复杂的结构设计有助于其显著的机械性能,但在仿生结构复合材料的背景下,单个矿物质构建块的内部结构特征和相应的机械性能往往没有得到足够的重视。生物矿化复合材料中的矿物质构建块表现出多种显著的晶内结构特征,如有机包裹体、无机杂质(或微量元素)、晶体特征(如非晶相、单晶体、分裂晶体、多晶体和纳米晶粒)、残余应力/应变和孪晶,这些特征显著改变了生物矿物质的机械性能。在这篇综述中,讨论了阐明三种最常见的生物矿化系统(方解石、文石和羟磷灰石)的晶内结构特征及其相应的力学意义的最新进展。提出并讨论了未来的研究方向和相应的挑战,如生物矿化体内晶内结构、非晶生物矿化和仿生合成的先进结构特征和形成机制。