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Thermal Emission of Alkali Metal Ions from Al(30)-Pillared Montmorillonite Studied by Mass Spectrometric Method

The thermal emission of alkali metal ions from Al(30)-pillared montmorillonite in comparison with its natural form was studied by mass spectrometry in the temperature range 770–930 K. The measurements were carried out on a magnetic mass spectrometer MI-1201. For natural montmorillonite, the densitie...

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Autores principales: Motalov, V. B., Karasev, N. S., Ovchinnikov, N. L., Butman, M. F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5651114/
https://www.ncbi.nlm.nih.gov/pubmed/29119037
http://dx.doi.org/10.1155/2017/4984151
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author Motalov, V. B.
Karasev, N. S.
Ovchinnikov, N. L.
Butman, M. F.
author_facet Motalov, V. B.
Karasev, N. S.
Ovchinnikov, N. L.
Butman, M. F.
author_sort Motalov, V. B.
collection PubMed
description The thermal emission of alkali metal ions from Al(30)-pillared montmorillonite in comparison with its natural form was studied by mass spectrometry in the temperature range 770–930 K. The measurements were carried out on a magnetic mass spectrometer MI-1201. For natural montmorillonite, the densities of the emission currents (j) decrease in the mass spectrum in the following sequence (T = 805 K, A/cm(2)): K(+) (4.55 · 10(−14)), Cs(+) (9.72 · 10(−15)), Rb(+) (1.13 · 10(−15)), Na(+) (1.75 · 10(−16)), Li(+) (3.37 · 10(−17)). For Al(30)-pillared montmorillonite, thermionic emission undergoes temperature-time changes. In the low-temperature section of the investigated range (770–805 K), the value of j increases substantially for all ions in comparison with natural montmorillonite (T = 805 K, A/cm(2)): Cs(+) (6.47 · 10(−13)), K(+) (9.44 · 10(−14)), Na(+) (3.34 · 10(−15)), Rb(+) (1.77 · 10(−15)), and Li(+) (4.59 · 10(−16)). A reversible anomaly is observed in the temperature range 805–832 K: with increasing temperature, the value of j of alkaline ions falls abruptly. This effect increases with increasing ionic radius of M(+). After a long heating-up period, this anomaly disappears and the lnj − 1/T dependence acquires a classical linear form. The results are interpreted from the point of view of the dependence of the efficiency of thermionic emission on the phase transformations of pillars.
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spelling pubmed-56511142017-11-08 Thermal Emission of Alkali Metal Ions from Al(30)-Pillared Montmorillonite Studied by Mass Spectrometric Method Motalov, V. B. Karasev, N. S. Ovchinnikov, N. L. Butman, M. F. J Anal Methods Chem Research Article The thermal emission of alkali metal ions from Al(30)-pillared montmorillonite in comparison with its natural form was studied by mass spectrometry in the temperature range 770–930 K. The measurements were carried out on a magnetic mass spectrometer MI-1201. For natural montmorillonite, the densities of the emission currents (j) decrease in the mass spectrum in the following sequence (T = 805 K, A/cm(2)): K(+) (4.55 · 10(−14)), Cs(+) (9.72 · 10(−15)), Rb(+) (1.13 · 10(−15)), Na(+) (1.75 · 10(−16)), Li(+) (3.37 · 10(−17)). For Al(30)-pillared montmorillonite, thermionic emission undergoes temperature-time changes. In the low-temperature section of the investigated range (770–805 K), the value of j increases substantially for all ions in comparison with natural montmorillonite (T = 805 K, A/cm(2)): Cs(+) (6.47 · 10(−13)), K(+) (9.44 · 10(−14)), Na(+) (3.34 · 10(−15)), Rb(+) (1.77 · 10(−15)), and Li(+) (4.59 · 10(−16)). A reversible anomaly is observed in the temperature range 805–832 K: with increasing temperature, the value of j of alkaline ions falls abruptly. This effect increases with increasing ionic radius of M(+). After a long heating-up period, this anomaly disappears and the lnj − 1/T dependence acquires a classical linear form. The results are interpreted from the point of view of the dependence of the efficiency of thermionic emission on the phase transformations of pillars. Hindawi 2017 2017-10-08 /pmc/articles/PMC5651114/ /pubmed/29119037 http://dx.doi.org/10.1155/2017/4984151 Text en Copyright © 2017 V. B. Motalov et al. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Motalov, V. B.
Karasev, N. S.
Ovchinnikov, N. L.
Butman, M. F.
Thermal Emission of Alkali Metal Ions from Al(30)-Pillared Montmorillonite Studied by Mass Spectrometric Method
title Thermal Emission of Alkali Metal Ions from Al(30)-Pillared Montmorillonite Studied by Mass Spectrometric Method
title_full Thermal Emission of Alkali Metal Ions from Al(30)-Pillared Montmorillonite Studied by Mass Spectrometric Method
title_fullStr Thermal Emission of Alkali Metal Ions from Al(30)-Pillared Montmorillonite Studied by Mass Spectrometric Method
title_full_unstemmed Thermal Emission of Alkali Metal Ions from Al(30)-Pillared Montmorillonite Studied by Mass Spectrometric Method
title_short Thermal Emission of Alkali Metal Ions from Al(30)-Pillared Montmorillonite Studied by Mass Spectrometric Method
title_sort thermal emission of alkali metal ions from al(30)-pillared montmorillonite studied by mass spectrometric method
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5651114/
https://www.ncbi.nlm.nih.gov/pubmed/29119037
http://dx.doi.org/10.1155/2017/4984151
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