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Nanoscale assembly processes revealed in the nacroprismatic transition zone of Pinna nobilis mollusc shells

机译:Pinna nobilis软体动物壳的壳棱变迁区揭示了纳米组装过程。

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摘要

Intricate biomineralization processes in molluscs engineer hierarchical structures with meso-, nano- and atomic architectures that give the final composite material exceptional mechanical strength and optical iridescence on the macroscale. This multiscale biological assembly inspires new synthetic routes to complex materials. Our investigation of the prism–nacre interface reveals nanoscale details governing the onset of nacre formation using high-resolution scanning transmission electron microscopy. A wedge-polishing technique provides unprecedented, large-area specimens required to span the entire interface. Within this region, we find a transition from nanofibrillar aggregation to irregular early-nacre layers, to well-ordered mature nacre suggesting the assembly process is driven by aggregation of nanoparticles (∼50–80 nm) within an organic matrix that arrange in fibre-like polycrystalline configurations. The particle number increases successively and, when critical packing is reached, they merge into early-nacre platelets. These results give new insights into nacre formation and particle-accretion mechanisms that may be common to many calcareous biominerals.
机译:软体动物中复杂的生物矿化过程设计了具有介观,纳米和原子构架的分级结构,使最终的复合材料在宏观上具有出色的机械强度和光学虹彩。这种多尺度的生物组装激发了合成复杂材料的新途径。我们对棱镜-珍珠层界面的研究揭示了使用高分辨率扫描透射电子显微镜控制珍珠层形成的纳米尺度细节。楔形抛光技术可提供跨越整个界面所需的前所未有的大面积试样。在该区域内,我们发现了从纳米原纤维聚集到不规则的早期珍珠层的过渡,到有序的成熟珍珠层的转变,这表明组装过程是由纳米颗粒(约50-80?nm)在有机基质中的聚集而驱动的,这些基质排列在纤维中。像多晶配置。颗粒数量连续增加,并且当达到临界堆积时,它们合并为早期珍珠层血小板。这些结果为许多钙质生物矿物可能共有的珍珠母形成和颗粒积聚机制提供了新的见解。

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