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Resonant Neutron Reflectometry on a Compact Neutron Source. / Nikova, E.; Salamatov, Yu.; Kravtsov, E.
In: Journal of Surface Investigation, Vol. 17, No. 4, 2023, p. 826-831.

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Harvard

Nikova, E, Salamatov, Y & Kravtsov, E 2023, 'Resonant Neutron Reflectometry on a Compact Neutron Source', Journal of Surface Investigation, vol. 17, no. 4, pp. 826-831. https://doi.org/10.1134/S1027451023040110

APA

Vancouver

Nikova E, Salamatov Y, Kravtsov E. Resonant Neutron Reflectometry on a Compact Neutron Source. Journal of Surface Investigation. 2023;17(4):826-831. doi: 10.1134/S1027451023040110

Author

Nikova, E. ; Salamatov, Yu. ; Kravtsov, E. / Resonant Neutron Reflectometry on a Compact Neutron Source. In: Journal of Surface Investigation. 2023 ; Vol. 17, No. 4. pp. 826-831.

BibTeX

@article{e7dc8cd6fa34409583905106241725bc,
title = "Resonant Neutron Reflectometry on a Compact Neutron Source",
abstract = "This paper presents an approach to solving the phase problem in neutron reflectometry (including polarized neutron reflectometry) based on the effect of the resonant interaction of nuclei of gadolinium isotopes 155Gd and 157Gd with thermal neutrons. This effect is used to implement the reference-layer method, which allows one, based on the results of three experiments, to calculate the complex reflection coefficient of the sample under study. Knowing the complex reflection coefficient makes possible model-independent analysis of the interaction potential, both nuclear and magnetic. The main application of this approach is the study of the structure of layers and interfaces, as well as determination of the magnetic state of multilayer metal nanoheterostructures. The theoretical basis of this method is given, which consists in deposition onto the studied sample of a gadolinium layer with known parameters, one of which can be varied in a controlled manner. The scheme of the experiment is described in detail using model numerical calculations. An experimental result is given for a simple single-layer niobium sample, for which the modulus and phase of the reflection coefficient are calculated. Promising directions for improving the method and possible directions for further work are proposed. Expectations for the characteristics of a compact neutron source, which are necessary for optimal implementation of the proposed method, are formulated. {\textcopyright} 2023, Pleiades Publishing, Ltd.",
author = "E. Nikova and Yu. Salamatov and E. Kravtsov",
year = "2023",
doi = "10.1134/S1027451023040110",
language = "English",
volume = "17",
pages = "826--831",
journal = "Journal of Surface Investigation",
issn = "1027-4510",
publisher = "Pleiades Publishing",
number = "4",

}

RIS

TY - JOUR

T1 - Resonant Neutron Reflectometry on a Compact Neutron Source

AU - Nikova, E.

AU - Salamatov, Yu.

AU - Kravtsov, E.

PY - 2023

Y1 - 2023

N2 - This paper presents an approach to solving the phase problem in neutron reflectometry (including polarized neutron reflectometry) based on the effect of the resonant interaction of nuclei of gadolinium isotopes 155Gd and 157Gd with thermal neutrons. This effect is used to implement the reference-layer method, which allows one, based on the results of three experiments, to calculate the complex reflection coefficient of the sample under study. Knowing the complex reflection coefficient makes possible model-independent analysis of the interaction potential, both nuclear and magnetic. The main application of this approach is the study of the structure of layers and interfaces, as well as determination of the magnetic state of multilayer metal nanoheterostructures. The theoretical basis of this method is given, which consists in deposition onto the studied sample of a gadolinium layer with known parameters, one of which can be varied in a controlled manner. The scheme of the experiment is described in detail using model numerical calculations. An experimental result is given for a simple single-layer niobium sample, for which the modulus and phase of the reflection coefficient are calculated. Promising directions for improving the method and possible directions for further work are proposed. Expectations for the characteristics of a compact neutron source, which are necessary for optimal implementation of the proposed method, are formulated. © 2023, Pleiades Publishing, Ltd.

AB - This paper presents an approach to solving the phase problem in neutron reflectometry (including polarized neutron reflectometry) based on the effect of the resonant interaction of nuclei of gadolinium isotopes 155Gd and 157Gd with thermal neutrons. This effect is used to implement the reference-layer method, which allows one, based on the results of three experiments, to calculate the complex reflection coefficient of the sample under study. Knowing the complex reflection coefficient makes possible model-independent analysis of the interaction potential, both nuclear and magnetic. The main application of this approach is the study of the structure of layers and interfaces, as well as determination of the magnetic state of multilayer metal nanoheterostructures. The theoretical basis of this method is given, which consists in deposition onto the studied sample of a gadolinium layer with known parameters, one of which can be varied in a controlled manner. The scheme of the experiment is described in detail using model numerical calculations. An experimental result is given for a simple single-layer niobium sample, for which the modulus and phase of the reflection coefficient are calculated. Promising directions for improving the method and possible directions for further work are proposed. Expectations for the characteristics of a compact neutron source, which are necessary for optimal implementation of the proposed method, are formulated. © 2023, Pleiades Publishing, Ltd.

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U2 - 10.1134/S1027451023040110

DO - 10.1134/S1027451023040110

M3 - Article

VL - 17

SP - 826

EP - 831

JO - Journal of Surface Investigation

JF - Journal of Surface Investigation

SN - 1027-4510

IS - 4

ER -

ID: 44653270