Simulation of energy transport in crystal with NaCl structure assisted by discrete breathers

Discrete breather (DB) is a spatially localized vibrational mode of large amplitude with vibration frequency outside the phonon band of the crystal. DB frequency can leave phonon spectrum due to the anharmonicity of interatomic bonds owing to the fact that the frequency of a nonlinear oscillator is...

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Main Authors: Semenov, A. S., Bebikhov, Yu. V., Kistanov, Andrey A.
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2019
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Online Access:https://hdl.handle.net/10356/105636
http://hdl.handle.net/10220/50256
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1056362023-03-04T17:20:38Z Simulation of energy transport in crystal with NaCl structure assisted by discrete breathers Semenov, A. S. Bebikhov, Yu. V. Kistanov, Andrey A. School of Mechanical and Aerospace Engineering Intrinsic Localized Mode Engineering::Mechanical engineering Discrete Breather Discrete breather (DB) is a spatially localized vibrational mode of large amplitude with vibration frequency outside the phonon band of the crystal. DB frequency can leave phonon spectrum due to the anharmonicity of interatomic bonds owing to the fact that the frequency of a nonlinear oscillator is amplitude dependent. In the case of soft (hard) anharmonicity the nonlinear oscillator frequency decreases (increases) with amplitude. Crystals having a gap in the phonon spectrum can, in principle, support the so-called gap DBs, i.e., DBs with frequencies within the gap. The alkali halide NaI crystal possesses a wide gap in the phonon spectrum and the existence of gap DBs in this crystal has been shown by Kiselev and Sievers with the use of the molecular dynamics method. Later on, several experimental works have been undertaken to support the results of the numerical study and also the possibility of energy exchange between two closely positioned DBs was shown by atomistic simulations. In the present study the energy exchange between DBs in larger clusters is simulated by molecular dynamics. It is shown that the energy initially given to the DB cluster stays in the localized form for a long time (hundreds of DB oscillation periods) even though the energy can travel from one lattice site to another and even polarization of DBs can change. These results contribute to our better understanding of the mechanism of energy localization and transport in crystals. Published version 2019-10-24T05:12:22Z 2019-12-06T21:55:02Z 2019-10-24T05:12:22Z 2019-12-06T21:55:02Z 2017 Journal Article Semenov, A. S., Bebikhov, Y. V., & Kistanov, A. A. (2017). Simulation of energy transport in crystal with NaCl structure assisted by discrete breathers. Letters on Materials, 7(2), 77-80. doi:10.22226/2410-3535-2017-2-77-80 https://hdl.handle.net/10356/105636 http://hdl.handle.net/10220/50256 10.22226/2410-3535-2017-2-77-80 en Letters on Materials © 2017 Institute for Metals Superplasticity Problems of Russian Academy of Sciences. This is an open-access article distributed under the terms of the Creative Commons Attribution License. 4 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Intrinsic Localized Mode
Engineering::Mechanical engineering
Discrete Breather
spellingShingle Intrinsic Localized Mode
Engineering::Mechanical engineering
Discrete Breather
Semenov, A. S.
Bebikhov, Yu. V.
Kistanov, Andrey A.
Simulation of energy transport in crystal with NaCl structure assisted by discrete breathers
description Discrete breather (DB) is a spatially localized vibrational mode of large amplitude with vibration frequency outside the phonon band of the crystal. DB frequency can leave phonon spectrum due to the anharmonicity of interatomic bonds owing to the fact that the frequency of a nonlinear oscillator is amplitude dependent. In the case of soft (hard) anharmonicity the nonlinear oscillator frequency decreases (increases) with amplitude. Crystals having a gap in the phonon spectrum can, in principle, support the so-called gap DBs, i.e., DBs with frequencies within the gap. The alkali halide NaI crystal possesses a wide gap in the phonon spectrum and the existence of gap DBs in this crystal has been shown by Kiselev and Sievers with the use of the molecular dynamics method. Later on, several experimental works have been undertaken to support the results of the numerical study and also the possibility of energy exchange between two closely positioned DBs was shown by atomistic simulations. In the present study the energy exchange between DBs in larger clusters is simulated by molecular dynamics. It is shown that the energy initially given to the DB cluster stays in the localized form for a long time (hundreds of DB oscillation periods) even though the energy can travel from one lattice site to another and even polarization of DBs can change. These results contribute to our better understanding of the mechanism of energy localization and transport in crystals.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Semenov, A. S.
Bebikhov, Yu. V.
Kistanov, Andrey A.
format Article
author Semenov, A. S.
Bebikhov, Yu. V.
Kistanov, Andrey A.
author_sort Semenov, A. S.
title Simulation of energy transport in crystal with NaCl structure assisted by discrete breathers
title_short Simulation of energy transport in crystal with NaCl structure assisted by discrete breathers
title_full Simulation of energy transport in crystal with NaCl structure assisted by discrete breathers
title_fullStr Simulation of energy transport in crystal with NaCl structure assisted by discrete breathers
title_full_unstemmed Simulation of energy transport in crystal with NaCl structure assisted by discrete breathers
title_sort simulation of energy transport in crystal with nacl structure assisted by discrete breathers
publishDate 2019
url https://hdl.handle.net/10356/105636
http://hdl.handle.net/10220/50256
_version_ 1759854003827507200