Unravelling Chemical Exchanges Through Steady State Free Precession NMR

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Jayanthi, Sundaresan, Lupulescu, Adonis, Shif, Mark, Osifova, Zuzana, Frydman, Lucio
Format: Preprint
Published: 2026
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866917528926683136
author Jayanthi, Sundaresan
Lupulescu, Adonis
Shif, Mark
Osifova, Zuzana
Frydman, Lucio
author_facet Jayanthi, Sundaresan
Lupulescu, Adonis
Shif, Mark
Osifova, Zuzana
Frydman, Lucio
contents NMR is uniquely endowed to analyze dynamics, with line shape and relaxation measurements covering timescales over several orders of magnitude. Further insight arises from pulse sequences like chemical exchange saturation transfer or relaxation dispersion, which facilitate, respectively, the detectability and shift characterization of even lowly populated states, and the pinpointing of the exact exchange rates. The present study demonstrates that Steady State Free Precession (SSFP) experiments involving a train of pulses with flip angle α spaced by repetition times TR, combine valuable features from both these experiments. Indeed, in the presence of chemical exchanges, SSFP yields via its offset-dependent excitation and saturation profiles, detailed information about the number, the chemical shifts and the populations of the exchanging sites even when these involve multiple intermediates with dissimilar abundances. Simultaneously SSFP can provide, via its TR dependence, a controllable timescale yielding kinetic information over a variety of slow/intermediate/fast exchange rates. All this is theoretically demonstrated with the aid of a Liouville-space formalism examining the steady state in the presence of chemical exchange. This formalism leads in both the slow and fast exchange regimes to analytical predictions that match well brute-force numerical calculations, which lend themselves to rapid and accurate fittings of exchange rates, chemical shifts, and site populations. The basic features associated to this novel approach to examine chemical kinetics are experimentally verified on simple model compounds; potential extensions are briefly discussed.
format Preprint
id arxiv_https___arxiv_org_abs_2605_24895
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Unravelling Chemical Exchanges Through Steady State Free Precession NMR
Jayanthi, Sundaresan
Lupulescu, Adonis
Shif, Mark
Osifova, Zuzana
Frydman, Lucio
Chemical Physics
NMR is uniquely endowed to analyze dynamics, with line shape and relaxation measurements covering timescales over several orders of magnitude. Further insight arises from pulse sequences like chemical exchange saturation transfer or relaxation dispersion, which facilitate, respectively, the detectability and shift characterization of even lowly populated states, and the pinpointing of the exact exchange rates. The present study demonstrates that Steady State Free Precession (SSFP) experiments involving a train of pulses with flip angle α spaced by repetition times TR, combine valuable features from both these experiments. Indeed, in the presence of chemical exchanges, SSFP yields via its offset-dependent excitation and saturation profiles, detailed information about the number, the chemical shifts and the populations of the exchanging sites even when these involve multiple intermediates with dissimilar abundances. Simultaneously SSFP can provide, via its TR dependence, a controllable timescale yielding kinetic information over a variety of slow/intermediate/fast exchange rates. All this is theoretically demonstrated with the aid of a Liouville-space formalism examining the steady state in the presence of chemical exchange. This formalism leads in both the slow and fast exchange regimes to analytical predictions that match well brute-force numerical calculations, which lend themselves to rapid and accurate fittings of exchange rates, chemical shifts, and site populations. The basic features associated to this novel approach to examine chemical kinetics are experimentally verified on simple model compounds; potential extensions are briefly discussed.
title Unravelling Chemical Exchanges Through Steady State Free Precession NMR
topic Chemical Physics
url https://arxiv.org/abs/2605.24895