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From spinodal decomposition to alternating layered structure within single crystals of biogenic magnesium calcite

机译:从旋光孔分解到生物镁铝石英的单晶内交替分层结构

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As organisms can form crystals only under ambient conditions, they demonstrate fascinating strategies to overcome this limitation. Recently, we reported a previously unknown biostrategy for toughening brittle calcite crystals, using coherently incorporated Mg-rich nanoprecipitates arranged in a layered manner in the lenses of a brittle?star, Ophiocoma wendtii. Here we propose the mechanisms of formation of this functional hierarchical structure under conditions of ambient temperature and limited solid diffusion. We propose that formation proceeds via a spinodal decomposition of a liquid or gel-like magnesium amorphous calcium carbonate (Mg-ACC) precursor into Mg-rich nanoparticles and a Mg-depleted amorphous matrix. In a second step, crystallization of the decomposed amorphous precursor leads to the formation of high-Mg particle-rich layers. The model is supported by our experimental results in synthetic systems. These insights have significant implications for fundamental understanding of the role of Mg-ACC material transformation during crystallization and its subsequent stability.
机译:由于生物体只能在环境条件下形成晶体,他们表现出令人着迷的策略来克服这种限制。最近,我们报道了一种以前未知的生物涂料,用于增韧脆性方解石晶体,使用以分层方式布置在脆性的晶状体的晶状体的富含Mg的纳米尺寸,在脆性的晶状体中,Ophiocoma Wendtii。在这里,我们提出了在环境温度和有限的固体扩散条件下形成这种功能分层结构的机制。我们提出,通过纺丝孔分解液体或凝胶状镁非晶碳酸钙(Mg-ACC)前体的形成进入Mg的纳米颗粒和Mg耗尽的非晶基质。在第二步骤中,分解的无定形前体的结晶导致形成高镁富颗粒的层。该模型得到了我们在合成系统中的实验结果的支持。这些见解对基础知识的基本理解具有重要意义,对结晶期间Mg-ACC材料转化的作用及其随后的稳定性。

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