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Universal structure motifs in biominerals: a lesson from nature for the efficient design of bioinspired functional materials

机译:生物矿物质中的通用结构图案:从自然中汲取教训以有效设计受生物启发的功能材料

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摘要

Biominerals are typically indispensable structures for their host organism in which they serve varying functions, such as mechanical support and protection, mineral storage, detoxification site, or as a sensor or optical guide. In this perspective article, we highlight the occurrence of both structural diversity and uniformity within these biogenic ceramics. For the first time, we demonstrate that the universality–diversity paradigm, which was initially introduced for proteins by Buehler et al. (Cranford & Buehler 2012 Biomateriomics; Cranford et al. 2013 Adv. Mater. >25, 802–824 (); Ackbarow & Buehler 2008 J. Comput. Theor. Nanosci. >5, 1193–1204 (); Buehler & Yung 2009 Nat. Mater. >8, 175–188 (doi:10.1038mat2387)), is also valid in the realm of biomineralization. A nanogranular composite structure is shared by most biominerals which rests on a common, non-classical crystal growth mechanism. The nanogranular composite structure affects various properties of the macroscale biogenic ceramic, a phenomenon we attribute to emergence. Emergence, in turn, is typical for hierarchically organized materials. This is a clear call to renew comparative studies of even distantly related biomineralizing organisms to identify further universal design motifs and their associated emergent properties. Such universal motifs with emergent macro-scale properties may represent an unparalleled toolbox for the efficient design of bioinspired functional materials.
机译:生物矿物质通常是其宿主生物不可或缺的结构,在其中,它们具有多种功能,例如机械支持和保护,矿物质存储,排毒部位或用作传感器或光导。在这篇观点文章中,我们重点介绍了这些生物陶瓷中结构多样性和均匀性的发生。我们首次证明了Buehler等人最初针对蛋白质引入的普遍性-多样性范式。 (Cranford&Buehler 2012 Biomateriomics; Cranford et al.2013 Adv.Mater。> 25 ,802–824(); Ackbarow&Buehler 2008 J.Comput.Theor.Nanosci。> 5 >,1193–1204(); Buehler&Yung 2009 Nat。Mater。> 8 ,175–188(doi:10.1038 / nmat2387)),在生物矿化领域也是有效的。大多数生物矿物共有一种纳米颗粒的复合结构,该结构基于一种常见的,非经典的晶体生长机制。纳米颗粒复合结构影响宏观生物陶瓷的各种特性,我们将这种现象归因于出现。反过来,对于分层组织的材料来说,出现是典型的。这是明确的呼吁,需要对甚至远缘相关的生物矿化生物进行比较研究,以进一步确定通用的设计主题及其相关的紧急特性。具有新兴的宏观性质的此类通用图案可能代表了高效设计生物灵感功能材料的无与伦比的工具箱。

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