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Proton and deuteron field-cycling NMR relaxometry of liquids confined in porous glasses by proton and deuteron field-cycling NMR relaxometry. The frequency dependence of the spin

Proton and deuteron field-cycling NMR relaxometry of liquids confined in porous glasses by proton and deuteron field-cycling NMR relaxometry. The frequency dependence of the spin

Self-diffusion studies by intra- and inter-molecular spin-lattice relaxometry using field-cycling: Liquids, plastic crystals, porous media, and polymer segments© 2017 Elsevier B.V.Field-cycling NMR relaxometry is a well-established technique for probing

Chapter 8: Application of Field-cycling 1H NMR Relaxometry to the Study of Translational and Rotational Dynamics in Liquids and Polymers
© 2019 The Royal Society of Chemistry. With the availability of commercial field-cycling (FC

Features of polymer chain dynamics as revealed by intermolecular nuclear magnetic dipole-dipole interaction: Model calculations and field-cycling NMR relaxometryProton NMR phenomena such as spin-lattice relaxation, free-induction decays, and solid echoes

Self-diffusion studies by intra- and inter-molecular spin-lattice relaxometry using field-cycling: Liquids, plastic crystals, porous media, and polymer segments© 2017 Elsevier B.V.Field-cycling NMR relaxometry is a well-established technique for probing

Features of polymer chain dynamics as revealed by intermolecular nuclear magnetic dipole-dipole interaction: Model calculations and field-cycling NMR relaxometryProton NMR phenomena such as spin-lattice relaxation, free-induction decays, and solid echoes

Investigations of polymer dynamics in nanoporous media by field cycling NMR relaxometry and the dipolar correlation effect been characterized by field cycling nuclear magnetic resonance relaxometry and the dipolar correlation

Spin-lattice relaxation dispersion in polymers: Dipolar-interaction components and short- and long-time limits of polymer chain mode theories. It is shown that these non-local chain modes dominate proton spin

Investigations of polymer dynamics in nanoporous media by field cycling NMR relaxometry and the dipolar correlation effect been characterized by field cycling nuclear magnetic resonance relaxometry and the dipolar correlation

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