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Systematic Experimental Study on Quantum Sieving of Hydrogen Isotopes in Metal‐Amide‐Imidazolate Frameworks with narrow 1‐D Channels

Quantum sieving of hydrogen isotopes is experimentally studied in isostructural hexagonal metal‐organic frameworks having 1‐D channels, named IFP‐1, −3, −4 and −7. Inside the channels, different molecules or atoms restrict the channel diameter periodically with apertures larger (4.2 Å for IFP‐1, 3.1...

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Autores principales: Mondal, Suvendu Sekhar, Kreuzer, Alex, Behrens, Karsten, Schütz, Gisela, Holdt, Hans‐Jürgen, Hirscher, Michael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6619243/
https://www.ncbi.nlm.nih.gov/pubmed/31017710
http://dx.doi.org/10.1002/cphc.201900183
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author Mondal, Suvendu Sekhar
Kreuzer, Alex
Behrens, Karsten
Schütz, Gisela
Holdt, Hans‐Jürgen
Hirscher, Michael
author_facet Mondal, Suvendu Sekhar
Kreuzer, Alex
Behrens, Karsten
Schütz, Gisela
Holdt, Hans‐Jürgen
Hirscher, Michael
author_sort Mondal, Suvendu Sekhar
collection PubMed
description Quantum sieving of hydrogen isotopes is experimentally studied in isostructural hexagonal metal‐organic frameworks having 1‐D channels, named IFP‐1, −3, −4 and −7. Inside the channels, different molecules or atoms restrict the channel diameter periodically with apertures larger (4.2 Å for IFP‐1, 3.1 Å for IFP‐3) and smaller (2.1 Å for IFP‐7, 1.7 Å for IFP‐4) than the kinetic diameter of hydrogen isotopes. From a geometrical point of view, no gas should penetrate into IFP‐7 and IFP‐4, but due to the thermally induced flexibility, so‐called gate‐opening effect of the apertures, penetration becomes possible with increasing temperature. Thermal desorption spectroscopy (TDS) measurements with pure H(2) or D(2) have been applied to study isotope adsorption. Further TDS experiments after exposure to an equimolar H(2)/D(2) mixture allow to determine directly the selectivity of isotope separation by quantum sieving. IFP‐7 shows a very low selectivity not higher than S=2. The selectivity of the materials with the smallest pore aperture IFP‐4 has a constant value of S≈2 for different exposure times and pressures, which can be explained by the 1‐D channel structure. Due to the relatively small cavities between the apertures of IFP‐4 and IFP‐7, molecules in the channels cannot pass each other, which leads to a single‐file filling. Therefore, no time dependence is observed, since the quantum sieving effect occurs only at the outermost pore aperture, resulting in a low separation selectivity.
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spelling pubmed-66192432019-07-22 Systematic Experimental Study on Quantum Sieving of Hydrogen Isotopes in Metal‐Amide‐Imidazolate Frameworks with narrow 1‐D Channels Mondal, Suvendu Sekhar Kreuzer, Alex Behrens, Karsten Schütz, Gisela Holdt, Hans‐Jürgen Hirscher, Michael Chemphyschem Articles Quantum sieving of hydrogen isotopes is experimentally studied in isostructural hexagonal metal‐organic frameworks having 1‐D channels, named IFP‐1, −3, −4 and −7. Inside the channels, different molecules or atoms restrict the channel diameter periodically with apertures larger (4.2 Å for IFP‐1, 3.1 Å for IFP‐3) and smaller (2.1 Å for IFP‐7, 1.7 Å for IFP‐4) than the kinetic diameter of hydrogen isotopes. From a geometrical point of view, no gas should penetrate into IFP‐7 and IFP‐4, but due to the thermally induced flexibility, so‐called gate‐opening effect of the apertures, penetration becomes possible with increasing temperature. Thermal desorption spectroscopy (TDS) measurements with pure H(2) or D(2) have been applied to study isotope adsorption. Further TDS experiments after exposure to an equimolar H(2)/D(2) mixture allow to determine directly the selectivity of isotope separation by quantum sieving. IFP‐7 shows a very low selectivity not higher than S=2. The selectivity of the materials with the smallest pore aperture IFP‐4 has a constant value of S≈2 for different exposure times and pressures, which can be explained by the 1‐D channel structure. Due to the relatively small cavities between the apertures of IFP‐4 and IFP‐7, molecules in the channels cannot pass each other, which leads to a single‐file filling. Therefore, no time dependence is observed, since the quantum sieving effect occurs only at the outermost pore aperture, resulting in a low separation selectivity. John Wiley and Sons Inc. 2019-05-02 2019-05-16 /pmc/articles/PMC6619243/ /pubmed/31017710 http://dx.doi.org/10.1002/cphc.201900183 Text en © 2019 The Authors. Published by Wiley-VCH Verlag GmbH & Co. KGaA. This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Articles
Mondal, Suvendu Sekhar
Kreuzer, Alex
Behrens, Karsten
Schütz, Gisela
Holdt, Hans‐Jürgen
Hirscher, Michael
Systematic Experimental Study on Quantum Sieving of Hydrogen Isotopes in Metal‐Amide‐Imidazolate Frameworks with narrow 1‐D Channels
title Systematic Experimental Study on Quantum Sieving of Hydrogen Isotopes in Metal‐Amide‐Imidazolate Frameworks with narrow 1‐D Channels
title_full Systematic Experimental Study on Quantum Sieving of Hydrogen Isotopes in Metal‐Amide‐Imidazolate Frameworks with narrow 1‐D Channels
title_fullStr Systematic Experimental Study on Quantum Sieving of Hydrogen Isotopes in Metal‐Amide‐Imidazolate Frameworks with narrow 1‐D Channels
title_full_unstemmed Systematic Experimental Study on Quantum Sieving of Hydrogen Isotopes in Metal‐Amide‐Imidazolate Frameworks with narrow 1‐D Channels
title_short Systematic Experimental Study on Quantum Sieving of Hydrogen Isotopes in Metal‐Amide‐Imidazolate Frameworks with narrow 1‐D Channels
title_sort systematic experimental study on quantum sieving of hydrogen isotopes in metal‐amide‐imidazolate frameworks with narrow 1‐d channels
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6619243/
https://www.ncbi.nlm.nih.gov/pubmed/31017710
http://dx.doi.org/10.1002/cphc.201900183
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