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Does Water Enable Porosity in Aluminosilicate Zeolites? Porous Frameworks versus Dense Minerals

[Image: see text] Recently identified zeolite precursors consisting of concentrated, hyposolvated homogeneous alkalisilicate liquids, hydrated silicate ionic liquids (HSIL), minimize correlation of synthesis variables and enable one to isolate and examine the impact of complex parameters such as wat...

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Autores principales: Asselman, Karel, Haouas, Mohamed, Houlleberghs, Maarten, Radhakrishnan, Sambhu, Wangermez, Wauter, Kirschhock, Christine E. A., Breynaert, Eric
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10161221/
https://www.ncbi.nlm.nih.gov/pubmed/37159660
http://dx.doi.org/10.1021/acs.cgd.2c01476
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author Asselman, Karel
Haouas, Mohamed
Houlleberghs, Maarten
Radhakrishnan, Sambhu
Wangermez, Wauter
Kirschhock, Christine E. A.
Breynaert, Eric
author_facet Asselman, Karel
Haouas, Mohamed
Houlleberghs, Maarten
Radhakrishnan, Sambhu
Wangermez, Wauter
Kirschhock, Christine E. A.
Breynaert, Eric
author_sort Asselman, Karel
collection PubMed
description [Image: see text] Recently identified zeolite precursors consisting of concentrated, hyposolvated homogeneous alkalisilicate liquids, hydrated silicate ionic liquids (HSIL), minimize correlation of synthesis variables and enable one to isolate and examine the impact of complex parameters such as water content on zeolite crystallization. HSIL are highly concentrated, homogeneous liquids containing water as a reactant rather than bulk solvent. This simplifies elucidation of the role of water during zeolite synthesis. Hydrothermal treatment at 170 °C of Al-doped potassium HSIL with chemical composition 0.5SiO(2):1KOH:xH(2)O:0.013Al(2)O(3) yields porous merlinoite (MER) zeolite when H(2)O/KOH exceeds 4 and dense, anhydrous megakalsilite when H(2)O/KOH is lower. Solid phase products and precursor liquids were fully characterized using XRD, SEM, NMR, TGA, and ICP analysis. Phase selectivity is discussed in terms of cation hydration as the mechanism, allowing a spatial cation arrangement enabling the formation of pores. Under water deficient conditions, the entropic penalty of cation hydration in the solid is large and cations need to be entirely coordinated by framework oxygens, leading to dense, anhydrous networks. Hence, the water activity in the synthesis medium and the affinity of a cation to either coordinate to water or to aluminosilicate decides whether a porous, hydrated, or a dense, anhydrous framework is formed.
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spelling pubmed-101612212023-05-06 Does Water Enable Porosity in Aluminosilicate Zeolites? Porous Frameworks versus Dense Minerals Asselman, Karel Haouas, Mohamed Houlleberghs, Maarten Radhakrishnan, Sambhu Wangermez, Wauter Kirschhock, Christine E. A. Breynaert, Eric Cryst Growth Des [Image: see text] Recently identified zeolite precursors consisting of concentrated, hyposolvated homogeneous alkalisilicate liquids, hydrated silicate ionic liquids (HSIL), minimize correlation of synthesis variables and enable one to isolate and examine the impact of complex parameters such as water content on zeolite crystallization. HSIL are highly concentrated, homogeneous liquids containing water as a reactant rather than bulk solvent. This simplifies elucidation of the role of water during zeolite synthesis. Hydrothermal treatment at 170 °C of Al-doped potassium HSIL with chemical composition 0.5SiO(2):1KOH:xH(2)O:0.013Al(2)O(3) yields porous merlinoite (MER) zeolite when H(2)O/KOH exceeds 4 and dense, anhydrous megakalsilite when H(2)O/KOH is lower. Solid phase products and precursor liquids were fully characterized using XRD, SEM, NMR, TGA, and ICP analysis. Phase selectivity is discussed in terms of cation hydration as the mechanism, allowing a spatial cation arrangement enabling the formation of pores. Under water deficient conditions, the entropic penalty of cation hydration in the solid is large and cations need to be entirely coordinated by framework oxygens, leading to dense, anhydrous networks. Hence, the water activity in the synthesis medium and the affinity of a cation to either coordinate to water or to aluminosilicate decides whether a porous, hydrated, or a dense, anhydrous framework is formed. American Chemical Society 2023-03-24 /pmc/articles/PMC10161221/ /pubmed/37159660 http://dx.doi.org/10.1021/acs.cgd.2c01476 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Asselman, Karel
Haouas, Mohamed
Houlleberghs, Maarten
Radhakrishnan, Sambhu
Wangermez, Wauter
Kirschhock, Christine E. A.
Breynaert, Eric
Does Water Enable Porosity in Aluminosilicate Zeolites? Porous Frameworks versus Dense Minerals
title Does Water Enable Porosity in Aluminosilicate Zeolites? Porous Frameworks versus Dense Minerals
title_full Does Water Enable Porosity in Aluminosilicate Zeolites? Porous Frameworks versus Dense Minerals
title_fullStr Does Water Enable Porosity in Aluminosilicate Zeolites? Porous Frameworks versus Dense Minerals
title_full_unstemmed Does Water Enable Porosity in Aluminosilicate Zeolites? Porous Frameworks versus Dense Minerals
title_short Does Water Enable Porosity in Aluminosilicate Zeolites? Porous Frameworks versus Dense Minerals
title_sort does water enable porosity in aluminosilicate zeolites? porous frameworks versus dense minerals
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10161221/
https://www.ncbi.nlm.nih.gov/pubmed/37159660
http://dx.doi.org/10.1021/acs.cgd.2c01476
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