On the Potential of Fourier-Encoded Saturation Transfers for Sensitizing Solid-State Magic-Angle Spinning NMR Experiments
Michael J. Jaroszewicz, Mihajlo Novakovic, and Lucio Frydman

TL;DR
This paper introduces Fourier-Encoded Saturation Transfer (FEST) MAS NMR, a novel method inspired by CEST, to enhance sensitivity in solid-state NMR by leveraging proton spin diffusion for broadband polarization transfer, achieving 5-10x signal enhancements.
Contribution
The paper proposes and demonstrates a new FEST MAS NMR technique that uses Fourier encoding and proton spin diffusion to improve sensitivity in solid-state NMR experiments.
Findings
Achieved 5-10x signal enhancement in experiments.
Demonstrated broadband polarization transfer for multiple 13C sites.
Theoretically predicts orders-of-magnitude improvements in sensitivity.
Abstract
Chemical exchange saturation transfer (CEST) is widely used for enhancing the solution NMR signatures of magnetically-dilute spin pools; in particular species at low concentrations undergoing chemical exchanges with an abundant spin pool. CEST's main feature involves encoding and then detecting the weak NMR signals of the magnetically dilute spin pools on a magnetically abundant spin pool of much easier detection - for instance the protons of H2O. Inspired by this method, we propose and exemplify a methodology to enhance the sensitivity of magic-angle spinning (MAS) solid-state NMR spectra. Our proposal uses the abundant 1H reservoir arising in organic solids as the magnetically abundant spin pool, and relies on proton spin diffusion in lieu of chemical exchange to mediate polarization transfer between a magnetically dilute spin pool and this magnetically abundant spin reporter. As an…
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Taxonomy
TopicsAdvanced NMR Techniques and Applications · NMR spectroscopy and applications · Lanthanide and Transition Metal Complexes
