27Al NMR Study of the Structure and Dynamics of Natrolite

Verfasser / Beitragende:
[M. Paczwa, A. Sapiga, M. Olszewski, N. Sergeev, A. Sapiga]
Ort, Verlag, Jahr:
2015
Enthalten in:
Applied Magnetic Resonance, 46/5(2015-05-01), 583-592
Format:
Artikel (online)
ID: 605546053
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024 7 0 |a 10.1007/s00723-015-0648-5  |2 doi 
035 |a (NATIONALLICENCE)springer-10.1007/s00723-015-0648-5 
245 0 0 |a 27Al NMR Study of the Structure and Dynamics of Natrolite  |h [Elektronische Daten]  |c [M. Paczwa, A. Sapiga, M. Olszewski, N. Sergeev, A. Sapiga] 
520 3 |a The temperature dependences of nuclear magnetic resonance and magic angle spinning nuclear magnetic resonance spectra of 27Al nuclei in natrolite (Na2Al2Si3O10· 2H2O) have been studied. The influence of water molecules and sodium ions mobility on the shape of the 27Al NMR spectrum and framework dynamics have been discussed The temperature dependences of the spin-lattice relaxation times T1 of 27Al nuclei in natrolite have also been studied. It has been shown that the spin-lattice relaxation of the 27Al is governed by the electric quadrupole interaction with the crystal electric field gradients modulated by translational motion of H2O molecules in the natrolite pores. The dipolar interactions with paramagnetic impurities become significant as a relaxation mechanism of the 27Al nuclei only at low temperatures (<270K). 
540 |a Springer-Verlag Wien, 2015 
700 1 |a Paczwa  |D M.  |u Institute of Physics, University of Szczecin, 70-451, Szczecin, Poland  |4 aut 
700 1 |a Sapiga  |D A.  |u Faculty of Physics, Taurida National V.I.Vernadsky University, Simferopol, Crimea  |4 aut 
700 1 |a Olszewski  |D M.  |u Institute of Physics, University of Szczecin, 70-451, Szczecin, Poland  |4 aut 
700 1 |a Sergeev  |D N.  |u Institute of Physics, University of Szczecin, 70-451, Szczecin, Poland  |4 aut 
773 0 |t Applied Magnetic Resonance  |d Springer Vienna  |g 46/5(2015-05-01), 583-592  |x 0937-9347  |q 46:5<583  |1 2015  |2 46  |o 723 
856 4 0 |u https://doi.org/10.1007/s00723-015-0648-5  |q text/html  |z Onlinezugriff via DOI 
898 |a BK010053  |b XK010053  |c XK010000 
900 7 |a Metadata rights reserved  |b Springer special CC-BY-NC licence  |2 nationallicence 
908 |D 1  |a research-article  |2 jats 
949 |B NATIONALLICENCE  |F NATIONALLICENCE  |b NL-springer 
950 |B NATIONALLICENCE  |P 856  |E 40  |u https://doi.org/10.1007/s00723-015-0648-5  |q text/html  |z Onlinezugriff via DOI 
950 |B NATIONALLICENCE  |P 700  |E 1-  |a Paczwa  |D M.  |u Institute of Physics, University of Szczecin, 70-451, Szczecin, Poland  |4 aut 
950 |B NATIONALLICENCE  |P 700  |E 1-  |a Sapiga  |D A.  |u Faculty of Physics, Taurida National V.I.Vernadsky University, Simferopol, Crimea  |4 aut 
950 |B NATIONALLICENCE  |P 700  |E 1-  |a Olszewski  |D M.  |u Institute of Physics, University of Szczecin, 70-451, Szczecin, Poland  |4 aut 
950 |B NATIONALLICENCE  |P 700  |E 1-  |a Sergeev  |D N.  |u Institute of Physics, University of Szczecin, 70-451, Szczecin, Poland  |4 aut 
950 |B NATIONALLICENCE  |P 773  |E 0-  |t Applied Magnetic Resonance  |d Springer Vienna  |g 46/5(2015-05-01), 583-592  |x 0937-9347  |q 46:5<583  |1 2015  |2 46  |o 723