Cross-correlated relaxation in the NMR of near-equivalent spin pairs: longitudinal relaxation and long-lived singlet order
Cross-correlated relaxation in the NMR of near-equivalent spin pairs: longitudinal relaxation and long-lived singlet order
The evolution of nuclear spin state populations is investigated for the case of a 13C2-labeled triyne in solution, for which the near-equivalent coupled pairs of 13C nuclei experience cross-correlated relaxation mechanisms. Inversion-recovery experiments reveal different recovery curves for the main peak amplitudes, especially when the conversion of population imbalances to observable coherences is induced by a radio frequency pulse with a small flip angle. Measurements are performed over a range of magnetic fields by using a sample shuttle apparatus. In some cases, the time constant TS for decay of nuclear singlet order is more than 100 times larger than the time constant T1 for the equilibration of longitudinal magnetization. The results are interpreted by a theoretical model incorporating cross-correlated relaxation mechanisms, anisotropic rotational diffusion, and an external random magnetic field. A Lindbladian formalism is used to describe the dissipative dynamics of the spin system in an environment of finite temperature. Good agreement is achieved between theory and experiment.
NMR, Nuclear Magnetic Resonance, spin, relaxation theory
Whipham, James W.
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Sabba, Mohamed
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Dagys, Laurynas
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Moustafa, Gamal
1a452cdc-4856-4243-9864-b391fb115f07
Bengs, Christian
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Levitt, Malcolm H.
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2 July 2024
Whipham, James W.
8146c9d2-11ec-4f04-b68e-97c68acc59a9
Sabba, Mohamed
bef5e5e8-18b2-43d9-8969-4a9b25bb8691
Dagys, Laurynas
0de61597-b152-4bee-a934-123a9d2de883
Moustafa, Gamal
1a452cdc-4856-4243-9864-b391fb115f07
Bengs, Christian
cd3282d0-27ad-444f-bcb4-70eeab0029b9
Levitt, Malcolm H.
bcc5a80a-e5c5-4e0e-9a9a-249d036747c3
Whipham, James W., Sabba, Mohamed, Dagys, Laurynas, Moustafa, Gamal, Bengs, Christian and Levitt, Malcolm H.
(2024)
Cross-correlated relaxation in the NMR of near-equivalent spin pairs: longitudinal relaxation and long-lived singlet order.
The Journal of Chemical Physics, 161 (1), [014112].
(doi:10.1063/5.0213997).
Abstract
The evolution of nuclear spin state populations is investigated for the case of a 13C2-labeled triyne in solution, for which the near-equivalent coupled pairs of 13C nuclei experience cross-correlated relaxation mechanisms. Inversion-recovery experiments reveal different recovery curves for the main peak amplitudes, especially when the conversion of population imbalances to observable coherences is induced by a radio frequency pulse with a small flip angle. Measurements are performed over a range of magnetic fields by using a sample shuttle apparatus. In some cases, the time constant TS for decay of nuclear singlet order is more than 100 times larger than the time constant T1 for the equilibration of longitudinal magnetization. The results are interpreted by a theoretical model incorporating cross-correlated relaxation mechanisms, anisotropic rotational diffusion, and an external random magnetic field. A Lindbladian formalism is used to describe the dissipative dynamics of the spin system in an environment of finite temperature. Good agreement is achieved between theory and experiment.
Text
JCP24-AR-01605
- Accepted Manuscript
Text
014112_1_5.0213997
- Version of Record
More information
Accepted/In Press date: 10 June 2024
Published date: 2 July 2024
Keywords:
NMR, Nuclear Magnetic Resonance, spin, relaxation theory
Identifiers
Local EPrints ID: 492288
URI: http://eprints.soton.ac.uk/id/eprint/492288
ISSN: 0021-9606
PURE UUID: b2f8ca42-107a-415b-87cb-d0681f536845
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Date deposited: 23 Jul 2024 17:04
Last modified: 24 Jul 2024 02:08
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