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用铝离子修饰舟形藻的壳厚度、孔径和组成。

Modifying the thickness, pore size, and composition of diatom frustule in Pinnularia sp. with Al ions.

机构信息

Laboratory of Physical Chemistry, and Center for Multiscale Electron Microscopy, Department of Chemical Engineering and Chemistry, Eindhoven University of Technology, Groene Loper 5, 5612 AE, Eindhoven, The Netherlands.

Laboratory for Inorganic Materials and Catalysis, Department of Chemical Engineering and Chemistry, Eindhoven University of Technology, P.O. Box 513, 5600 MB, Eindhoven, The Netherlands.

出版信息

Sci Rep. 2020 Nov 11;10(1):19498. doi: 10.1038/s41598-020-76318-5.

Abstract

Diatoms are unicellular photosynthetic algae that produce a silica exoskeleton (frustule) which exposes a highly ordered nano to micro scale morphology. In recent years there has been a growing interest in modifying diatom frustules for technological applications. This is achieved by adding non-essential metals to the growth medium of diatoms which in turn modifies morphology, composition, and resulting properties of the frustule. Here, we investigate the frustule formation in diatom Pinnularia sp., including changes to overall morphology, silica thickness, and composition, in the presence of Al ions at different concentrations. Our results show that in the presence of Al the total silica uptake from the growth medium increases, although a decrease in the growth rate is observed. This leads to a higher inorganic content per diatom resulting in a decreased pore diameter and a thicker frustule as evidenced by electron microscopy. Furthermore, Al solid-state NMR, FIB-SEM, and EDS results confirm that Al becomes incorporated into the frustule during the silicification process, thus, improving hydrolysis resistance. This approach may be extended to a broad range of elements and diatom species towards the scalable production of silica materials with tunable hierarchical morphology and chemical composition.

摘要

硅藻是一种单细胞光合藻类,它们会产生一种二氧化硅外壳(壳),暴露于高度有序的纳米到微尺度形态。近年来,人们对通过添加非必需金属来改变硅藻壳以用于技术应用越来越感兴趣。这反过来又会改变壳的形态、组成和最终性质。在这里,我们研究了硅藻 Pinnularia sp. 的壳形成,包括在不同浓度的 Al 离子存在下,整体形态、二氧化硅厚度和组成的变化。我们的结果表明,在 Al 的存在下,从生长介质中吸收的总硅量增加,尽管观察到生长速度下降。这导致每只硅藻的无机含量增加,从而导致孔径减小,外壳变厚,这一点可以通过电子显微镜得到证实。此外,Al 的固态 NMR、FIB-SEM 和 EDS 结果证实,Al 在硅化过程中被纳入壳中,从而提高了水解抗性。这种方法可以扩展到广泛的元素和硅藻种类,以实现具有可调谐分级形态和化学组成的二氧化硅材料的规模化生产。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ae71/7658998/b578d380cdcc/41598_2020_76318_Fig1_HTML.jpg

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