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Using optimal control methods with constraints to generate singlet states in NMR Full article

Journal Journal of Magnetic Resonance
ISSN: 1090-7807
Output data Year: 2018, Volume: 291, Pages: 14-22 Pages count : 9 DOI: 10.1016/j.jmr.2018.03.005
Tags Spin relaxation, Long-lived states, Singlet-state NMR, Adiabatic passage, Optimal control theory
Authors Rodin Bogdan A. 1,2 , Kiryutin Alexey S. 1,2 , Yurkovskaya Alexandra V. 1,2 , Ivanov Konstantin L. 1,2 , Yamamoto Satoru 3 , Sato Kazunobu 3 , Takui Takeji 3
Affiliations
1 International Tomography Center SB RAS, Novosibirsk 630090, Russia
2 Novosibirsk State University, Novosibirsk 630090, Russia
3 Graduate School of Science, Osaka City University, Osaka, Sumiyoshi, Osaka 558-8585, Japan

Abstract: A method is proposed for optimizing the performance of the APSOC (Adiabatic-Passage Spin Order Conversion) technique (J. Magn. Reson., 273 (2016) 56-64), which can be exploited in NMR experiments with singlet spin states. In this technique magnetization-to-singlet conversion (and singlet-to-magnetization conversion) is performed by using adiabatically ramped RF-fields. Optimization utilizes the GRAPE (Gradient Ascent Pulse Engineering) approach, in which for a fixed search area we assume monotonicity to the envelope of the RF-field. Such an approach allows one to achieve much better performance for APSOC; consequently, the efficiency of magnetization-to-singlet conversion is greatly improved as compared to simple model RF-ramps, e.g., linear ramps. We also demonstrate that the optimization method is reasonably robust to possible inaccuracies in determining NMR parameters of the spin system under study and also in setting the RF-field parameters. The present approach can be exploited in other NMR and EPR applications using adiabatic switching of spin Hamiltonians.
Cite: Rodin B.A. , Kiryutin A.S. , Yurkovskaya A.V. , Ivanov K.L. , Yamamoto S. , Sato K. , Takui T.
Using optimal control methods with constraints to generate singlet states in NMR
Journal of Magnetic Resonance. 2018. V.291. P.14-22. DOI: 10.1016/j.jmr.2018.03.005
Dates:
Submitted: Nov 20, 2017
Accepted: Mar 9, 2018
Published online: Mar 27, 2018
Identifiers: No identifiers
Citing: Пока нет цитирований
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