Quantum effects in the thermal conductivity of solid krypton—methane solutions

The dynamic interaction of a quantum rotor with its crystalline environment has been studied by measurement of the thermal conductivity of the Kr₁–c(CH₄)c solid solutions at c = 0.05–0.75 in the temperature region 2–40 K. The thermal resistance of the solutions was mainly determined by the resonance...

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Опубліковано в: :Физика низких температур
Дата:2003
Автори: Krivchikov, A.I., Gorodilov, B.Ya., Manzhelii, V.G., Dudkin, V.V.
Формат: Стаття
Мова:English
Опубліковано: Фізико-технічний інститут низьких температур ім. Б.І. Вєркіна НАН України 2003
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Онлайн доступ:https://nasplib.isofts.kiev.ua/handle/123456789/128919
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Назва журналу:Digital Library of Periodicals of National Academy of Sciences of Ukraine
Цитувати:Quantum effects in the thermal conductivity of solid krypton—methane solutions / A.I. Krivchikov, B.Ya. Gorodilov, V.G. Manzhelii, V.V. Dudkin // Физика низких температур. — 2003. — Т. 29, № 9-10. — С. 1012-1017. — Бібліогр.: 22 назв. — англ.

Репозитарії

Digital Library of Periodicals of National Academy of Sciences of Ukraine
id nasplib_isofts_kiev_ua-123456789-128919
record_format dspace
spelling Krivchikov, A.I.
Gorodilov, B.Ya.
Manzhelii, V.G.
Dudkin, V.V.
2018-01-14T12:57:14Z
2018-01-14T12:57:14Z
2003
Quantum effects in the thermal conductivity of solid krypton—methane solutions / A.I. Krivchikov, B.Ya. Gorodilov, V.G. Manzhelii, V.V. Dudkin // Физика низких температур. — 2003. — Т. 29, № 9-10. — С. 1012-1017. — Бібліогр.: 22 назв. — англ.
0132-6414
PACS: 66.70.+f, 63.50.+x
https://nasplib.isofts.kiev.ua/handle/123456789/128919
The dynamic interaction of a quantum rotor with its crystalline environment has been studied by measurement of the thermal conductivity of the Kr₁–c(CH₄)c solid solutions at c = 0.05–0.75 in the temperature region 2–40 K. The thermal resistance of the solutions was mainly determined by the resonance scattering of phonons on CH₄ molecules with the nuclear spin I = 1 (the nuclear spin of the T species). The influence of the nuclear spin conversion on the temperature dependence of the thermal conductivity к(T) leads to a well-defined minimum on к(T). The temperature of the minimum depends on the CH₄ concentration. It was shown that the nonmonotonic increase of the anisotropic molecular field with the CH₄ concentration is caused by a compensation effect due to corrections in the mutual orientations of the neighboring rotors at c > 0.5. The temperature dependence of Kr₁–c(CH₄)c is described within the Debye model of thermal conductivity taking into account the lower limit of the phonon mean free path. It is shown that phonon–rotation coupling is responsible for the anomalous temperature dependence of the thermal resistance at varying temperature. It increases strongly when the quantum character of the CH₄ rotation at low temperatures changes to a classical one at high temperatures. A thermal conductivity jump (a sharp increase in к(T) within a narrow temperature range) was also observed. The temperature position of the jump varies from 9.7 to 8.4 K when the CH₄ concentration changes from 0.25 to 0.45.
The authors would like to thank to Professors R. Pohl, W. Press, G. Weiss, A. Jezhowski, and B. Danilchenko for helpful discussions. This work is supported by Ukrainian Ministry of Education and Science Grant No. 2M/74.
en
Фізико-технічний інститут низьких температур ім. Б.І. Вєркіна НАН України
Физика низких температур
Low-Temperature Thermodynamics and Structure
Quantum effects in the thermal conductivity of solid krypton—methane solutions
Article
published earlier
institution Digital Library of Periodicals of National Academy of Sciences of Ukraine
collection DSpace DC
title Quantum effects in the thermal conductivity of solid krypton—methane solutions
spellingShingle Quantum effects in the thermal conductivity of solid krypton—methane solutions
Krivchikov, A.I.
Gorodilov, B.Ya.
Manzhelii, V.G.
Dudkin, V.V.
Low-Temperature Thermodynamics and Structure
title_short Quantum effects in the thermal conductivity of solid krypton—methane solutions
title_full Quantum effects in the thermal conductivity of solid krypton—methane solutions
title_fullStr Quantum effects in the thermal conductivity of solid krypton—methane solutions
title_full_unstemmed Quantum effects in the thermal conductivity of solid krypton—methane solutions
title_sort quantum effects in the thermal conductivity of solid krypton—methane solutions
author Krivchikov, A.I.
Gorodilov, B.Ya.
Manzhelii, V.G.
Dudkin, V.V.
author_facet Krivchikov, A.I.
Gorodilov, B.Ya.
Manzhelii, V.G.
Dudkin, V.V.
topic Low-Temperature Thermodynamics and Structure
topic_facet Low-Temperature Thermodynamics and Structure
publishDate 2003
language English
container_title Физика низких температур
publisher Фізико-технічний інститут низьких температур ім. Б.І. Вєркіна НАН України
format Article
description The dynamic interaction of a quantum rotor with its crystalline environment has been studied by measurement of the thermal conductivity of the Kr₁–c(CH₄)c solid solutions at c = 0.05–0.75 in the temperature region 2–40 K. The thermal resistance of the solutions was mainly determined by the resonance scattering of phonons on CH₄ molecules with the nuclear spin I = 1 (the nuclear spin of the T species). The influence of the nuclear spin conversion on the temperature dependence of the thermal conductivity к(T) leads to a well-defined minimum on к(T). The temperature of the minimum depends on the CH₄ concentration. It was shown that the nonmonotonic increase of the anisotropic molecular field with the CH₄ concentration is caused by a compensation effect due to corrections in the mutual orientations of the neighboring rotors at c > 0.5. The temperature dependence of Kr₁–c(CH₄)c is described within the Debye model of thermal conductivity taking into account the lower limit of the phonon mean free path. It is shown that phonon–rotation coupling is responsible for the anomalous temperature dependence of the thermal resistance at varying temperature. It increases strongly when the quantum character of the CH₄ rotation at low temperatures changes to a classical one at high temperatures. A thermal conductivity jump (a sharp increase in к(T) within a narrow temperature range) was also observed. The temperature position of the jump varies from 9.7 to 8.4 K when the CH₄ concentration changes from 0.25 to 0.45.
issn 0132-6414
url https://nasplib.isofts.kiev.ua/handle/123456789/128919
citation_txt Quantum effects in the thermal conductivity of solid krypton—methane solutions / A.I. Krivchikov, B.Ya. Gorodilov, V.G. Manzhelii, V.V. Dudkin // Физика низких температур. — 2003. — Т. 29, № 9-10. — С. 1012-1017. — Бібліогр.: 22 назв. — англ.
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first_indexed 2025-11-28T21:59:15Z
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