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      A Practical Review of NMR Lineshapes for Spin-1/2 and Quadrupolar Nuclei in Disordered Materials

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          Abstract

          NMR is a powerful spectroscopic method that can provide information on the structural disorder in solids, complementing scattering and diffraction techniques. The structural disorder in solids can generate a dispersion of local magnetic and electric fields, resulting in a distribution of isotropic chemical shift δ iso and quadrupolar coupling C Q. For spin-1/2 nuclei, the NMR linewidth and shape under high-resolution magic-angle spinning (MAS) reflects the distributions of isotropic chemical shift, providing a rich source of disorder information. For quadrupolar nuclei, the second-order quadrupolar broadening remains present even under MAS. In addition to isotropic chemical shift, structural disorder can impact the electric field gradient (EFG) and consequently the quadrupolar NMR parameters. The distributions of quadrupolar coupling and isotropic chemical shift are superimposed with the second-order quadrupolar broadening, but can be potentially characterized by MQMAS (multiple-quantum magic-angle spinning) spectroscopy. We review analyses of NMR lineshapes in 2D DQ–SQ (double-quantum single-quantum) and MQMAS spectroscopies, to provide a guide for more general lineshape analysis. In addition, methods to enhance the spectral resolution and sensitivity for quadrupolar nuclei are discussed, including NMR pulse techniques and the application of high magnetic fields. The role of magnetic field strength and its impact on the strategy of determining optimum NMR methods for disorder characterization are also discussed.

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          Modified Spin-Echo Method for Measuring Nuclear Relaxation Times

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            Modelling one- and two-dimensional solid-state NMR spectra

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              • Record: found
              • Abstract: not found
              • Article: not found

              NMR in rotating solids

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                Author and article information

                Journal
                Int J Mol Sci
                Int J Mol Sci
                ijms
                International Journal of Molecular Sciences
                MDPI
                1422-0067
                07 August 2020
                August 2020
                : 21
                : 16
                : 5666
                Affiliations
                Nation High Magnetic Field Laboratory, Tallahassee, FL 32310, USA; kuizhi.chen@ 123456magnet.fsu.edu
                Author information
                https://orcid.org/0000-0002-9853-7070
                Article
                ijms-21-05666
                10.3390/ijms21165666
                7461203
                32784642
                20db8894-d6fc-4f5e-88ce-307996ebd98c
                © 2020 by the author.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 29 June 2020
                : 05 August 2020
                Categories
                Review

                Molecular biology
                disorder,solid-state nmr,amorphous material,quadrupolar nuclei,lineshape,high-field nmr,dq–sq,mqmas,inhomogeneous broadening

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