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Effect of SiO(2) amount on heterogeneous base catalysis of SiO(2)@Mg–Al layered double hydroxide

The effects of SiO(2) amount on the base catalysis of highly active finely crystallized Mg–Al type layered double hydroxides prepared by the co-precipitation method with coexistence of SiO(2) spheres, denoted as SiO(2)@LDHs, were investigated. With the Si/(Mg + Al) atomic ratios of 0–0.50, the highe...

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Autores principales: Shirotori, Mahiro, Nishimura, Shun, Ebitani, Kohki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9083954/
https://www.ncbi.nlm.nih.gov/pubmed/35542717
http://dx.doi.org/10.1039/c8ra04925d
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author Shirotori, Mahiro
Nishimura, Shun
Ebitani, Kohki
author_facet Shirotori, Mahiro
Nishimura, Shun
Ebitani, Kohki
author_sort Shirotori, Mahiro
collection PubMed
description The effects of SiO(2) amount on the base catalysis of highly active finely crystallized Mg–Al type layered double hydroxides prepared by the co-precipitation method with coexistence of SiO(2) spheres, denoted as SiO(2)@LDHs, were investigated. With the Si/(Mg + Al) atomic ratios of 0–0.50, the highest activity for the Knoevenagel condensation was observed in the case of Si/(Mg + Al) = 0.17, as the reaction rate of 171.1 mmol g(cat)(−1) h(−1). The base activity increased concomitantly with decreasing LDH crystallite size up to Si/(Mg + Al) atomic ratio of 0.17. However, above the Si/(Mg + Al) atomic ratio of 0.17, the reaction rate and TOF(base) were decreased although the total base amount was increased. Results of TEM-EDS and (29)Si CP-MAS NMR suggest that the co-existing SiO(2) causes advantages for dispersion and reduction of the LDH crystallite to improve the base catalysis of SiO(2)@Mg–Al LDH, whereas the excess SiO(2) species unfortunately poisons the highly active sites on the finely crystallized LDH crystals above a Si/(Mg + Al) atomic ratio of 0.17. According to these results, we inferred that the amount of spherical SiO(2) seeds in the co-precipitation method is an important factor to increase the base catalysis of SiO(2)@LDHs; i.e. the control of Si/(Mg + Al) atomic ratio is necessary to avoid the poisoning of highly active base sites on the LDH crystal.
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spelling pubmed-90839542022-05-09 Effect of SiO(2) amount on heterogeneous base catalysis of SiO(2)@Mg–Al layered double hydroxide Shirotori, Mahiro Nishimura, Shun Ebitani, Kohki RSC Adv Chemistry The effects of SiO(2) amount on the base catalysis of highly active finely crystallized Mg–Al type layered double hydroxides prepared by the co-precipitation method with coexistence of SiO(2) spheres, denoted as SiO(2)@LDHs, were investigated. With the Si/(Mg + Al) atomic ratios of 0–0.50, the highest activity for the Knoevenagel condensation was observed in the case of Si/(Mg + Al) = 0.17, as the reaction rate of 171.1 mmol g(cat)(−1) h(−1). The base activity increased concomitantly with decreasing LDH crystallite size up to Si/(Mg + Al) atomic ratio of 0.17. However, above the Si/(Mg + Al) atomic ratio of 0.17, the reaction rate and TOF(base) were decreased although the total base amount was increased. Results of TEM-EDS and (29)Si CP-MAS NMR suggest that the co-existing SiO(2) causes advantages for dispersion and reduction of the LDH crystallite to improve the base catalysis of SiO(2)@Mg–Al LDH, whereas the excess SiO(2) species unfortunately poisons the highly active sites on the finely crystallized LDH crystals above a Si/(Mg + Al) atomic ratio of 0.17. According to these results, we inferred that the amount of spherical SiO(2) seeds in the co-precipitation method is an important factor to increase the base catalysis of SiO(2)@LDHs; i.e. the control of Si/(Mg + Al) atomic ratio is necessary to avoid the poisoning of highly active base sites on the LDH crystal. The Royal Society of Chemistry 2018-08-06 /pmc/articles/PMC9083954/ /pubmed/35542717 http://dx.doi.org/10.1039/c8ra04925d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Shirotori, Mahiro
Nishimura, Shun
Ebitani, Kohki
Effect of SiO(2) amount on heterogeneous base catalysis of SiO(2)@Mg–Al layered double hydroxide
title Effect of SiO(2) amount on heterogeneous base catalysis of SiO(2)@Mg–Al layered double hydroxide
title_full Effect of SiO(2) amount on heterogeneous base catalysis of SiO(2)@Mg–Al layered double hydroxide
title_fullStr Effect of SiO(2) amount on heterogeneous base catalysis of SiO(2)@Mg–Al layered double hydroxide
title_full_unstemmed Effect of SiO(2) amount on heterogeneous base catalysis of SiO(2)@Mg–Al layered double hydroxide
title_short Effect of SiO(2) amount on heterogeneous base catalysis of SiO(2)@Mg–Al layered double hydroxide
title_sort effect of sio(2) amount on heterogeneous base catalysis of sio(2)@mg–al layered double hydroxide
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9083954/
https://www.ncbi.nlm.nih.gov/pubmed/35542717
http://dx.doi.org/10.1039/c8ra04925d
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AT ebitanikohki effectofsio2amountonheterogeneousbasecatalysisofsio2mgallayereddoublehydroxide