Synthesis of short-range ordered aluminosilicates at ambient conditions
Abstract We report here on structure-related aggregation effects of short-range ordered aluminosilicates (SROAS) that have to be considered in the development of synthesis protocols and may be relevant for the properties of SROAS in the environment. We synthesized SROAS of variable composition by ne...
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doaj-8e2875dd96824864bf9cd0ac0a9fdb322021-02-21T12:33:41ZengNature Publishing GroupScientific Reports2045-23222021-02-0111111310.1038/s41598-021-83643-wSynthesis of short-range ordered aluminosilicates at ambient conditionsKatharina R. Lenhardt0Hergen Breitzke1Gerd Buntkowsky2Erik Reimhult3Max Willinger4Thilo Rennert5Fachgebiet Bodenchemie mit Pedologie, Institut für Bodenkunde und Standortslehre, Universität HohenheimEduard-Zintl-Institut für Anorganische und Physikalische Chemie, Technische Universität DarmstadtEduard-Zintl-Institut für Anorganische und Physikalische Chemie, Technische Universität DarmstadtInstitut für Biologisch Inspirierte Materialien, Universität für Bodenkultur WienInstitut für Biologisch Inspirierte Materialien, Universität für Bodenkultur WienFachgebiet Bodenchemie mit Pedologie, Institut für Bodenkunde und Standortslehre, Universität HohenheimAbstract We report here on structure-related aggregation effects of short-range ordered aluminosilicates (SROAS) that have to be considered in the development of synthesis protocols and may be relevant for the properties of SROAS in the environment. We synthesized SROAS of variable composition by neutralizing aqueous aluminium chloride with sodium orthosilicate at ambient temperature and pressure. We determined elemental composition, visualized morphology by microscopic techniques, and resolved mineral structure by solid-state 29Si and 27Al nuclear magnetic resonance and Fourier-transform infrared spectroscopy. Nitrogen sorption revealed substantial surface loss of Al-rich SROAS that resembled proto-imogolite formed in soils and sediments due to aggregation upon freezing. The effect was less pronounced in Si-rich SROAS, indicating a structure-dependent effect on spatial arrangement of mass at the submicron scale. Cryomilling efficiently fractured aggregates but did not change the magnitude of specific surface area. Since accessibility of surface functional groups is a prerequisite for sequestration of substances, elucidating physical and chemical processes of aggregation as a function of composition and crystallinity may improve our understanding of the reactivity of SROAS in the environment.https://doi.org/10.1038/s41598-021-83643-w |
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DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Katharina R. Lenhardt Hergen Breitzke Gerd Buntkowsky Erik Reimhult Max Willinger Thilo Rennert |
spellingShingle |
Katharina R. Lenhardt Hergen Breitzke Gerd Buntkowsky Erik Reimhult Max Willinger Thilo Rennert Synthesis of short-range ordered aluminosilicates at ambient conditions Scientific Reports |
author_facet |
Katharina R. Lenhardt Hergen Breitzke Gerd Buntkowsky Erik Reimhult Max Willinger Thilo Rennert |
author_sort |
Katharina R. Lenhardt |
title |
Synthesis of short-range ordered aluminosilicates at ambient conditions |
title_short |
Synthesis of short-range ordered aluminosilicates at ambient conditions |
title_full |
Synthesis of short-range ordered aluminosilicates at ambient conditions |
title_fullStr |
Synthesis of short-range ordered aluminosilicates at ambient conditions |
title_full_unstemmed |
Synthesis of short-range ordered aluminosilicates at ambient conditions |
title_sort |
synthesis of short-range ordered aluminosilicates at ambient conditions |
publisher |
Nature Publishing Group |
series |
Scientific Reports |
issn |
2045-2322 |
publishDate |
2021-02-01 |
description |
Abstract We report here on structure-related aggregation effects of short-range ordered aluminosilicates (SROAS) that have to be considered in the development of synthesis protocols and may be relevant for the properties of SROAS in the environment. We synthesized SROAS of variable composition by neutralizing aqueous aluminium chloride with sodium orthosilicate at ambient temperature and pressure. We determined elemental composition, visualized morphology by microscopic techniques, and resolved mineral structure by solid-state 29Si and 27Al nuclear magnetic resonance and Fourier-transform infrared spectroscopy. Nitrogen sorption revealed substantial surface loss of Al-rich SROAS that resembled proto-imogolite formed in soils and sediments due to aggregation upon freezing. The effect was less pronounced in Si-rich SROAS, indicating a structure-dependent effect on spatial arrangement of mass at the submicron scale. Cryomilling efficiently fractured aggregates but did not change the magnitude of specific surface area. Since accessibility of surface functional groups is a prerequisite for sequestration of substances, elucidating physical and chemical processes of aggregation as a function of composition and crystallinity may improve our understanding of the reactivity of SROAS in the environment. |
url |
https://doi.org/10.1038/s41598-021-83643-w |
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