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NMR spectroscopy

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NMR spectroscopy

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Also known as magnetic resonance spectroscopy, MR spectroscopy, MRS, nuclear magnetic resonance spectroscopy

nuclear magnetic resonance spectroscopy

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Nuclear magnetic resonance spectroscopy
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A 900 MHz NMR instrument with a 21.1 T magnet at HWB-NMR , Birmingham, UK Nuclear magnetic resonance spectroscopy, commonly known as NMR spectroscopy or magnetic resonance spectroscopy (MRS), is a spectroscopic technique based on re-orientation of atomic nuclei with non-zero nuclear spins in an external magnetic field. This re-orientation occurs with absorption of electromagnetic radiation in the radio frequency region from roughly 4 to 900 MHz, which depends on the isotopic nature of the nucleus and increases proportionally to the strength of the external magnetic field. Notably, the resonance frequency of each NMR-active nucleus depends on its chemical environment. As a result, NMR spectra provide information about individual functional groups present in the sample, as well as about connections between nearby nuclei in the same molecule. As the NMR spectra are unique or highly characteristic to individual compounds and functional groups, NMR spectroscopy is one of the most important methods to identify molecular structures, particularly of organic compounds.

The principle of NMR usually involves three sequential steps:

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