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Insights into the Microstructure of Hydrothermal Synthesized Nanoscale K(2)O-Al(2)O(3)-SiO(2)-H(2)O Particles

K-A-S-H (K(2)O-Al(2)O(3)-SiO(2)-H(2)O) gel is a key phase that forms in most alkali-activated binders (eco-friendly binders which utilize a substantial amount of industrial by-product). An in-depth understanding of the microstructure and performance of this nano-sized key phase facilitates better ap...

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Detalles Bibliográficos
Autores principales: Liu, Bao, Zhu, Chunyan, Zhuang, Kunde, Shuai, Le, Li, Dongxu, Long, Wujian, Xing, Feng, Fang, Yuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7022309/
https://www.ncbi.nlm.nih.gov/pubmed/31888086
http://dx.doi.org/10.3390/nano10010063
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author Liu, Bao
Zhu, Chunyan
Zhuang, Kunde
Shuai, Le
Li, Dongxu
Long, Wujian
Xing, Feng
Fang, Yuan
author_facet Liu, Bao
Zhu, Chunyan
Zhuang, Kunde
Shuai, Le
Li, Dongxu
Long, Wujian
Xing, Feng
Fang, Yuan
author_sort Liu, Bao
collection PubMed
description K-A-S-H (K(2)O-Al(2)O(3)-SiO(2)-H(2)O) gel is a key phase that forms in most alkali-activated binders (eco-friendly binders which utilize a substantial amount of industrial by-product). An in-depth understanding of the microstructure and performance of this nano-sized key phase facilitates better application to alkali-activated binders. However, such studies remain little and undetailed. Therefore, our research aims to provide insights into the microstructure of K-A-S-H particles synthesized with accurate stoichiometric control by the hydrothermal method through thermogravimetric analysis (TG), Fourier transform infrared spectroscopy (FTIR), nuclear magnetic resonance (NMR), scanning electron microscopy (SEM), transmission electron microscopy (TEM) and BET surface area. The results show that for materials prepared at the curing temperature lower than 80 °C, the K-A-S-H products were completely amorphous. With increased curing temperature and time, the K-A-S-H products were transformed from the amorphous phase to the crystalline zeolite phase structure, with a reduction in the specific surface area. The TG results indicate that the crystalline phase contains more non-evaporated water or zeolite water for structural rearrangement. The degree of tetrahedral polymerization slightly decreased with an increase of the K(2)O/SiO(2) ratio as the amount of non-bridged oxygen atoms increased, whereas it gradually increased with an increase of curing temperature and time, as suggested by the FTIR and NMR results. Various K(2)O/SiO(2) ratios resulted in the formation of zeolite K-H and K-G zeolite, both of which exhibited highly polymerized three-dimensional network structures. However, there was no significant effect of the SiO(2)/Al(2)O(3) ratio on the structure of K-A-S-H products. Overall, these results provide insight into understanding the chemical stability of K-A-S-H.
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spelling pubmed-70223092020-03-09 Insights into the Microstructure of Hydrothermal Synthesized Nanoscale K(2)O-Al(2)O(3)-SiO(2)-H(2)O Particles Liu, Bao Zhu, Chunyan Zhuang, Kunde Shuai, Le Li, Dongxu Long, Wujian Xing, Feng Fang, Yuan Nanomaterials (Basel) Article K-A-S-H (K(2)O-Al(2)O(3)-SiO(2)-H(2)O) gel is a key phase that forms in most alkali-activated binders (eco-friendly binders which utilize a substantial amount of industrial by-product). An in-depth understanding of the microstructure and performance of this nano-sized key phase facilitates better application to alkali-activated binders. However, such studies remain little and undetailed. Therefore, our research aims to provide insights into the microstructure of K-A-S-H particles synthesized with accurate stoichiometric control by the hydrothermal method through thermogravimetric analysis (TG), Fourier transform infrared spectroscopy (FTIR), nuclear magnetic resonance (NMR), scanning electron microscopy (SEM), transmission electron microscopy (TEM) and BET surface area. The results show that for materials prepared at the curing temperature lower than 80 °C, the K-A-S-H products were completely amorphous. With increased curing temperature and time, the K-A-S-H products were transformed from the amorphous phase to the crystalline zeolite phase structure, with a reduction in the specific surface area. The TG results indicate that the crystalline phase contains more non-evaporated water or zeolite water for structural rearrangement. The degree of tetrahedral polymerization slightly decreased with an increase of the K(2)O/SiO(2) ratio as the amount of non-bridged oxygen atoms increased, whereas it gradually increased with an increase of curing temperature and time, as suggested by the FTIR and NMR results. Various K(2)O/SiO(2) ratios resulted in the formation of zeolite K-H and K-G zeolite, both of which exhibited highly polymerized three-dimensional network structures. However, there was no significant effect of the SiO(2)/Al(2)O(3) ratio on the structure of K-A-S-H products. Overall, these results provide insight into understanding the chemical stability of K-A-S-H. MDPI 2019-12-26 /pmc/articles/PMC7022309/ /pubmed/31888086 http://dx.doi.org/10.3390/nano10010063 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Liu, Bao
Zhu, Chunyan
Zhuang, Kunde
Shuai, Le
Li, Dongxu
Long, Wujian
Xing, Feng
Fang, Yuan
Insights into the Microstructure of Hydrothermal Synthesized Nanoscale K(2)O-Al(2)O(3)-SiO(2)-H(2)O Particles
title Insights into the Microstructure of Hydrothermal Synthesized Nanoscale K(2)O-Al(2)O(3)-SiO(2)-H(2)O Particles
title_full Insights into the Microstructure of Hydrothermal Synthesized Nanoscale K(2)O-Al(2)O(3)-SiO(2)-H(2)O Particles
title_fullStr Insights into the Microstructure of Hydrothermal Synthesized Nanoscale K(2)O-Al(2)O(3)-SiO(2)-H(2)O Particles
title_full_unstemmed Insights into the Microstructure of Hydrothermal Synthesized Nanoscale K(2)O-Al(2)O(3)-SiO(2)-H(2)O Particles
title_short Insights into the Microstructure of Hydrothermal Synthesized Nanoscale K(2)O-Al(2)O(3)-SiO(2)-H(2)O Particles
title_sort insights into the microstructure of hydrothermal synthesized nanoscale k(2)o-al(2)o(3)-sio(2)-h(2)o particles
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7022309/
https://www.ncbi.nlm.nih.gov/pubmed/31888086
http://dx.doi.org/10.3390/nano10010063
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