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Nuclear Magnetic Resonance ( NMR )

Maria Baias

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Abstract

Nuclear magnetic resonance (NMR) is an outstanding technique widely used in chemistry, biology, medicine, and materials science by measuring NMR parameters like chemical shift, nuclear spin relaxation, diffusion coefficients, dipolar couplings, and quadrupolar parameters. NMR can be applied for studying solution and solid‐state samples in high and low magnetic fields. Major breakthroughs in the area of portable NMR sensors enable the noninvasive investigation of precious objects that must remain intact during the experiments.

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What this paper is about

Nuclear magnetic resonance (NMR) is an outstanding technique widely used in chemistry, biology, medicine, and materials science by measuring NMR parameters like chemical shift, nuclear spin relaxation, diffusion coefficients, dipolar couplings, and quadrupolar parameters. NMR can be applied for studying solution and solid‐state samples in high and low magnetic fields. Major breakthroughs in the area of portable NMR sensors enable the noninvasive investigation of precious objects that must remain intact during the experiments.

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Available abstract

Nuclear magnetic resonance (NMR) is an outstanding technique widely used in chemistry, biology, medicine, and materials science by measuring NMR parameters like chemical shift, nuclear spin relaxation, diffusion coefficients, dipolar couplings, and quadrupolar parameters. NMR can be applied for studying solution and solid‐state samples in high and low magnetic fields. Major breakthroughs in the area of portable NMR sensors enable the noninvasive investigation of precious objects that must remain intact during the experiments.

Key concepts: Solid-state nuclear magnetic resonance, Nuclear magnetic resonance, Nuclear magnetic resonance spectroscopy, Relaxation (psychology), Fluorine-19 NMR, Two-dimensional nuclear magnetic resonance spectroscopy, Chemical shift, Chemistry

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