Standard

Magnetic Field Effect in Bimolecular Rate Constant of Radical Recombination. / Doktorov, Alexander B; Lukzen, Nikita N.

в: International Journal of Molecular Sciences, Том 24, № 8, 7555, 20.04.2023.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

Doktorov, AB & Lukzen, NN 2023, 'Magnetic Field Effect in Bimolecular Rate Constant of Radical Recombination', International Journal of Molecular Sciences, Том. 24, № 8, 7555. https://doi.org/10.3390/ijms24087555

APA

Doktorov, A. B., & Lukzen, N. N. (2023). Magnetic Field Effect in Bimolecular Rate Constant of Radical Recombination. International Journal of Molecular Sciences, 24(8), [7555]. https://doi.org/10.3390/ijms24087555

Vancouver

Doktorov AB, Lukzen NN. Magnetic Field Effect in Bimolecular Rate Constant of Radical Recombination. International Journal of Molecular Sciences. 2023 апр. 20;24(8):7555. doi: 10.3390/ijms24087555

Author

Doktorov, Alexander B ; Lukzen, Nikita N. / Magnetic Field Effect in Bimolecular Rate Constant of Radical Recombination. в: International Journal of Molecular Sciences. 2023 ; Том 24, № 8.

BibTeX

@article{57607e72cbbd4d3b8ca67f0d914d2188,
title = "Magnetic Field Effect in Bimolecular Rate Constant of Radical Recombination",
abstract = "The influence of magnetic fields on chemical reactions, including biological ones, has been and still is a topical subject in the field of scientific research. Experimentally discovered and theoretically substantiated magnetic and spin effects in chemical radical reactions form the basis of research in the field of spin chemistry. In the present work, the effect of a magnetic field on the rate constant of the bimolecular spin-selective recombination of radicals in the bulk of a solution is considered theoretically for the first time, taking into account the hyperfine interaction of radical spins with their magnetic nuclei. In addition, the paramagnetic relaxation of unpaired spins of the radicals and the non-equality of their g-factors that also influence the recombination process are taken into account. It is found that the reaction rate constant can vary in magnetic field from a few to half a dozen percent, depending on the relative diffusion coefficient of radicals, which is determined by the solution viscosity. It is shown that the consideration of hyperfine interactions gives rise to the presence of resonances in the dependence of the rate constant on the magnetic field. The magnitudes of the magnetic fields of these resonances are determined by the hyperfine coupling constants and difference in the g-factors of the recombining radicals. Analytical expressions for the reaction rate constant of the bulk recombination for magnetic fields larger than hfi (hyperfine interaction) constants are obtained. In general, it is shown for the first time that accounting for hyperfine interactions of radical spins with magnetic nuclei significantly affects the dependence of the reaction rate constant of the bulk radical recombination on the magnetic field.",
keywords = "Magnetic Fields, Recombination, Genetic",
author = "Doktorov, {Alexander B} and Lukzen, {Nikita N}",
note = "Funding: This research was funded by Ministry of Science and Higher Education of the Russian Federation (Contract No. 075-15-2021-580).",
year = "2023",
month = apr,
day = "20",
doi = "10.3390/ijms24087555",
language = "English",
volume = "24",
journal = "International Journal of Molecular Sciences",
issn = "1661-6596",
publisher = "Multidisciplinary Digital Publishing Institute (MDPI)",
number = "8",

}

RIS

TY - JOUR

T1 - Magnetic Field Effect in Bimolecular Rate Constant of Radical Recombination

AU - Doktorov, Alexander B

AU - Lukzen, Nikita N

N1 - Funding: This research was funded by Ministry of Science and Higher Education of the Russian Federation (Contract No. 075-15-2021-580).

PY - 2023/4/20

Y1 - 2023/4/20

N2 - The influence of magnetic fields on chemical reactions, including biological ones, has been and still is a topical subject in the field of scientific research. Experimentally discovered and theoretically substantiated magnetic and spin effects in chemical radical reactions form the basis of research in the field of spin chemistry. In the present work, the effect of a magnetic field on the rate constant of the bimolecular spin-selective recombination of radicals in the bulk of a solution is considered theoretically for the first time, taking into account the hyperfine interaction of radical spins with their magnetic nuclei. In addition, the paramagnetic relaxation of unpaired spins of the radicals and the non-equality of their g-factors that also influence the recombination process are taken into account. It is found that the reaction rate constant can vary in magnetic field from a few to half a dozen percent, depending on the relative diffusion coefficient of radicals, which is determined by the solution viscosity. It is shown that the consideration of hyperfine interactions gives rise to the presence of resonances in the dependence of the rate constant on the magnetic field. The magnitudes of the magnetic fields of these resonances are determined by the hyperfine coupling constants and difference in the g-factors of the recombining radicals. Analytical expressions for the reaction rate constant of the bulk recombination for magnetic fields larger than hfi (hyperfine interaction) constants are obtained. In general, it is shown for the first time that accounting for hyperfine interactions of radical spins with magnetic nuclei significantly affects the dependence of the reaction rate constant of the bulk radical recombination on the magnetic field.

AB - The influence of magnetic fields on chemical reactions, including biological ones, has been and still is a topical subject in the field of scientific research. Experimentally discovered and theoretically substantiated magnetic and spin effects in chemical radical reactions form the basis of research in the field of spin chemistry. In the present work, the effect of a magnetic field on the rate constant of the bimolecular spin-selective recombination of radicals in the bulk of a solution is considered theoretically for the first time, taking into account the hyperfine interaction of radical spins with their magnetic nuclei. In addition, the paramagnetic relaxation of unpaired spins of the radicals and the non-equality of their g-factors that also influence the recombination process are taken into account. It is found that the reaction rate constant can vary in magnetic field from a few to half a dozen percent, depending on the relative diffusion coefficient of radicals, which is determined by the solution viscosity. It is shown that the consideration of hyperfine interactions gives rise to the presence of resonances in the dependence of the rate constant on the magnetic field. The magnitudes of the magnetic fields of these resonances are determined by the hyperfine coupling constants and difference in the g-factors of the recombining radicals. Analytical expressions for the reaction rate constant of the bulk recombination for magnetic fields larger than hfi (hyperfine interaction) constants are obtained. In general, it is shown for the first time that accounting for hyperfine interactions of radical spins with magnetic nuclei significantly affects the dependence of the reaction rate constant of the bulk radical recombination on the magnetic field.

KW - Magnetic Fields

KW - Recombination, Genetic

UR - https://www.scopus.com/record/display.uri?eid=2-s2.0-85156194128&origin=inward&txGid=49f5c76fd852eb191dcf014ffc530d70

U2 - 10.3390/ijms24087555

DO - 10.3390/ijms24087555

M3 - Article

C2 - 37108719

VL - 24

JO - International Journal of Molecular Sciences

JF - International Journal of Molecular Sciences

SN - 1661-6596

IS - 8

M1 - 7555

ER -

ID: 49074218