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Time-Domain NMR to Investigate the Confinement of Water in Ultrathin BPH Zeolites
Mariia Ivanova1, Eddy Dib2, Svetlana Mintova2
1Resonance Systems GmbH, 73230 Kirchheim/Teck, Germany.
Abstract:
In this work, we investigated the dynamics of water in the pores of ultrathin BPH zeolite (Linde Q) nanosheets at different temperatures using 1H time-domain NMR. Relaxation times and pore size distribution were determined by fitting the curves obtained using (i) Hahn and (ii) Carr-Purcell-Meiboom-Gill (CPMG) echo trains. Two distinct relaxation components and pore sizes were identified and assigned to water molecules in micro- and mesopores, respectively. The relaxation behavior within each individual pore adheres to a fast exchange regime, while an intermediate one governs the exchange between water molecules in different pores. The ratio of longitudinal and transversal relaxation times (T11/T21) of ∼2 reflects a strong surface interaction for water in zeolite pores featuring a surface relaxivity of 0.15 nm/ms. The confinement of water in the pores delays the rates of solid-liquid phase transitions, giving rise to a hysteresis loop reflecting a higher stability for confined liquid water or amorphous ice. These results highlight the possibility of tuning the separation capacities of zeolites in wet environments at different temperatures.
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