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Main Authors: Vojvodin, Cameron S., Holmes, Sean T., Kirschhock, Christine E. A., Hirsh, David A., Huskić, Igor, Senanayake, Sanjaya, Betancourt, Luis, Xu, Wenqian, Breynaert, Eric, Friščić, Tomislav, Schurko, Robert W.
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2503.18475
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author Vojvodin, Cameron S.
Holmes, Sean T.
Kirschhock, Christine E. A.
Hirsh, David A.
Huskić, Igor
Senanayake, Sanjaya
Betancourt, Luis
Xu, Wenqian
Breynaert, Eric
Friščić, Tomislav
Schurko, Robert W.
author_facet Vojvodin, Cameron S.
Holmes, Sean T.
Kirschhock, Christine E. A.
Hirsh, David A.
Huskić, Igor
Senanayake, Sanjaya
Betancourt, Luis
Xu, Wenqian
Breynaert, Eric
Friščić, Tomislav
Schurko, Robert W.
contents New mechanochemical preparations of three multicomponent crystals (MCCs) of the form MCl:urea.nH2O (M = Li+, Na+, and Cs+) are reported. Their structures were determined by an NMR crystallography approach, combining Rietveld refinement of synchrotron powder X-ray diffraction data (PXRD), multinuclear (35Cl, 7Li, 23Na, and 133Cs) solid-state NMR (SSNMR) spectroscopy, and thermal analysis. Mechanochemical syntheses of the three MCCs, two of which are novel, are optimized for maximum yield and efficiency. 35Cl SSNMR is well-suited for the structural characterization of these MCCs since it is sensitive to subtle differences and/or changes in chloride ion environments, providing a powerful means of examining H...Cl-bonding environments. Alkali metal NMR is beneficial for identifying the number of unique magnetically and crystallographically distinct sites and enables facile detection of educts and/or impurities. In the case of NaCl:urea.H2O, 23Na MAS NMR spectra are key, both for identifying residual NaCl educt and for monitoring NaCl:urea.H2O degradation, which appears to proceed via an autocatalytic decomposition process driven by water (with a rate constant of k = 1.22x10-3 s-1). SSNMR and PXRD were used to inform the initial structural models. Following Rietveld refinement, the models were subjected to dispersion-corrected plane-wave DFT geometry optimizations and subsequent calculations of the 35Cl EFG tensors, which enable the refinement of hydrogen atom positions, as well as the exploration of their relationships to the local hydrogen bonding environments of the chloride ions and crystallographic symmetry elements.
format Preprint
id arxiv_https___arxiv_org_abs_2503_18475
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Rietveld Refinement and NMR Crystallographic Investigations of Multicomponent Crystals Containing Alkali Metal Chlorides and Urea
Vojvodin, Cameron S.
Holmes, Sean T.
Kirschhock, Christine E. A.
Hirsh, David A.
Huskić, Igor
Senanayake, Sanjaya
Betancourt, Luis
Xu, Wenqian
Breynaert, Eric
Friščić, Tomislav
Schurko, Robert W.
Materials Science
Soft Condensed Matter
New mechanochemical preparations of three multicomponent crystals (MCCs) of the form MCl:urea.nH2O (M = Li+, Na+, and Cs+) are reported. Their structures were determined by an NMR crystallography approach, combining Rietveld refinement of synchrotron powder X-ray diffraction data (PXRD), multinuclear (35Cl, 7Li, 23Na, and 133Cs) solid-state NMR (SSNMR) spectroscopy, and thermal analysis. Mechanochemical syntheses of the three MCCs, two of which are novel, are optimized for maximum yield and efficiency. 35Cl SSNMR is well-suited for the structural characterization of these MCCs since it is sensitive to subtle differences and/or changes in chloride ion environments, providing a powerful means of examining H...Cl-bonding environments. Alkali metal NMR is beneficial for identifying the number of unique magnetically and crystallographically distinct sites and enables facile detection of educts and/or impurities. In the case of NaCl:urea.H2O, 23Na MAS NMR spectra are key, both for identifying residual NaCl educt and for monitoring NaCl:urea.H2O degradation, which appears to proceed via an autocatalytic decomposition process driven by water (with a rate constant of k = 1.22x10-3 s-1). SSNMR and PXRD were used to inform the initial structural models. Following Rietveld refinement, the models were subjected to dispersion-corrected plane-wave DFT geometry optimizations and subsequent calculations of the 35Cl EFG tensors, which enable the refinement of hydrogen atom positions, as well as the exploration of their relationships to the local hydrogen bonding environments of the chloride ions and crystallographic symmetry elements.
title Rietveld Refinement and NMR Crystallographic Investigations of Multicomponent Crystals Containing Alkali Metal Chlorides and Urea
topic Materials Science
Soft Condensed Matter
url https://arxiv.org/abs/2503.18475