The rise of human in vivo NMR spectroscopy
Paul A. Bottomley
Abstract
Open-access reader
Paul A. Bottomley
Abstract
Open-access reader
NMR spectroscopy and NMR imaging with magnetic field gradients make strange bedfellows, the requirements for one seemingly ruling out the other for human applications. Nevertheless, their stories are intertwined; the advent of high field imaging systems arose because of the desire for human spectroscopy. Localized spectroscopy is possible because of NMR imaging. Both have links to physics at Nottingham, at least in the personalized account that follows. Today, virtually all NMR spectroscopy experiments can be conceived with a localized in vivo spectroscopy counterpart.
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NMR spectroscopy and NMR imaging with magnetic field gradients make strange bedfellows, the requirements for one seemingly ruling out the other for human applications. Nevertheless, their stories are intertwined; the advent of high field imaging systems arose because of the desire for human spectroscopy. Localized spectroscopy is possible because of NMR imaging. Both have links to physics at Nottingham, at least in the personalized account that follows. Today, virtually all NMR spectroscopy experiments can be conceived with a localized in vivo spectroscopy counterpart.
Key concepts: Nuclear magnetic resonance spectroscopy, Spectroscopy, Transverse relaxation-optimized spectroscopy, Nuclear magnetic resonance, Fluorine-19 NMR, Two-dimensional nuclear magnetic resonance spectroscopy, Chemistry, Physics