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Nanometer-Scale Chemistry of a Calcite Biomineralization Template: Implications for Skeletal Composition and Nucleation

机译:方解石生物矿化模板的纳米级化学:对骨骼组成和成核的影响。

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摘要

Plankton, corals, and other organisms produce calcium carbonate skeletons that are integral to their survival, form a key component of the global carbon cycle, and record an archive of past oceanographic conditions in their geochemistry. A key aspect of the formation of these biominerals is the interaction between organic templating structures and mineral precipitation processes. Laboratory-based studies have shown that these atomic-scale processes can profoundly influence the architecture and composition of minerals, but their importance in calcifying organisms is poorly understood because it is difficult to measure the chemistry of in vivo biomineral interfaces at spatially relevant scales. Understanding the role of templates in biomineral nucleation, and their importance in skeletal geochemistry requires an integrated, multiscale approach, which can place atom-scale observations of organic-mineral interfaces within a broader structural and geochemical context. Here we map the chemistry of an embedded organic template structure within a carbonate skeleton of the foraminifera Orbulina universa using both atom probe tomography (APT), a 3D chemical imaging technique with Ångström-level spatial resolution, and time-of-flight secondary ionization mass spectrometry (ToF-SIMS), a 2D chemical imaging technique with submicron resolution. We quantitatively link these observations, revealing that the organic template in O. universa is uniquely enriched in both Na and Mg, and contributes to intraskeletal chemical heterogeneity. Our APT analyses reveal the cation composition of the organic surface, offering evidence to suggest that cations other than Ca2+, previously considered passive spectator ions in biomineral templating, may be important in defining the energetics of carbonate nucleation on organic templates.
机译:浮游生物,珊瑚和其他生物产生的碳酸钙骨架是其生存所必需的,形成了全球碳循环的关键组成部分,并在其地球化学中记录了过去海洋学状况的档案。这些生物矿物质形成的关键方面是有机模板结构与矿物沉淀过程之间的相互作用。基于实验室的研究表明,这些原子级过程可以深刻影响矿物的结构和组成,但人们对钙化生物的重要性了解甚少,因为很难在空间相关的尺度上测量体内生物矿物界面的化学性质。要了解模板在生物矿物成核中的作用及其在骨骼地球化学中的重要性,需要采用一种集成的,多尺度的方法,该方法可以将原子尺度的有机-矿物界面观察置于更广泛的结构和地球化学范围内。在这里,我们使用原子探针层析成像(APT),具有Ångström级空间分辨率的3D化学成像技术和飞行时间的二次电离质量,绘制了有孔虫球藻碳酸盐骨架内嵌入的有机模板结构的化学分布图。光谱法(ToF-SIMS),一种具有亚微米分辨率的2D化学成像技术。我们定量地链接这些观察,揭示了O.universa中的有机模板独特地富含Na和Mg,并有助于骨骼内化学异质性。我们的APT分析揭示了有机表面的阳离子组成,提供了证据表明除Ca 2 + 以外的其他阳离子(以前在生物矿物模板中被认为是被动的旁观者离子)可能对定义碳酸盐成核的能量学很重要。在有机模板上。

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