Vibrational states of hexagonal ZnO doped with Co

Vibrational density of states of 12.5% cobalt doped bulk hexagonal ZnO has been studied using the density functional theory method. It has been shown that introduction of cobalt into ZnO leads to appearance of additional vibrational modes with their frequencies dependent on the relative positions of...

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Published in:Semiconductor Physics Quantum Electronics & Optoelectronics
Date:2015
Main Authors: Kupchak, I.M., Serpak, N.F., Strelchuk, V.V., Korbutyak, D.V.
Format: Article
Language:English
Published: Інститут фізики напівпровідників імені В.Є. Лашкарьова НАН України 2015
Online Access:https://nasplib.isofts.kiev.ua/handle/123456789/120730
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Journal Title:Digital Library of Periodicals of National Academy of Sciences of Ukraine
Cite this:Vibrational states of hexagonal ZnO doped with Co / I.M. Kupchak, N.F. Serpak, V.V. Strelchuk, D.V. Korbutyak // Semiconductor Physics Quantum Electronics & Optoelectronics. — 2015. — Т. 18, № 1. — С. 86-89. — Бібліогр.: 22 назв. — англ.

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Digital Library of Periodicals of National Academy of Sciences of Ukraine
id nasplib_isofts_kiev_ua-123456789-120730
record_format dspace
spelling Kupchak, I.M.
Serpak, N.F.
Strelchuk, V.V.
Korbutyak, D.V.
2017-06-12T18:08:07Z
2017-06-12T18:08:07Z
2015
Vibrational states of hexagonal ZnO doped with Co / I.M. Kupchak, N.F. Serpak, V.V. Strelchuk, D.V. Korbutyak // Semiconductor Physics Quantum Electronics & Optoelectronics. — 2015. — Т. 18, № 1. — С. 86-89. — Бібліогр.: 22 назв. — англ.
1560-8034
PACS 63.20.dk, 75.50.Dd, 75.50.Pp
https://nasplib.isofts.kiev.ua/handle/123456789/120730
DOI: 10.15407/spqeo18.01.086
Vibrational density of states of 12.5% cobalt doped bulk hexagonal ZnO has been studied using the density functional theory method. It has been shown that introduction of cobalt into ZnO leads to appearance of additional vibrational modes with their frequencies dependent on the relative positions of cobalt atoms. The magnetic and vibrational properties have been studied in highly Co-doped ZnO samples that are characterized by a high possibility of metal clusters formation.
The work was supported by Science for Peace and Security Program (the grant NATO NUKR.SFPP 984735).
en
Інститут фізики напівпровідників імені В.Є. Лашкарьова НАН України
Semiconductor Physics Quantum Electronics & Optoelectronics
Vibrational states of hexagonal ZnO doped with Co
Article
published earlier
institution Digital Library of Periodicals of National Academy of Sciences of Ukraine
collection DSpace DC
title Vibrational states of hexagonal ZnO doped with Co
spellingShingle Vibrational states of hexagonal ZnO doped with Co
Kupchak, I.M.
Serpak, N.F.
Strelchuk, V.V.
Korbutyak, D.V.
title_short Vibrational states of hexagonal ZnO doped with Co
title_full Vibrational states of hexagonal ZnO doped with Co
title_fullStr Vibrational states of hexagonal ZnO doped with Co
title_full_unstemmed Vibrational states of hexagonal ZnO doped with Co
title_sort vibrational states of hexagonal zno doped with co
author Kupchak, I.M.
Serpak, N.F.
Strelchuk, V.V.
Korbutyak, D.V.
author_facet Kupchak, I.M.
Serpak, N.F.
Strelchuk, V.V.
Korbutyak, D.V.
publishDate 2015
language English
container_title Semiconductor Physics Quantum Electronics & Optoelectronics
publisher Інститут фізики напівпровідників імені В.Є. Лашкарьова НАН України
format Article
description Vibrational density of states of 12.5% cobalt doped bulk hexagonal ZnO has been studied using the density functional theory method. It has been shown that introduction of cobalt into ZnO leads to appearance of additional vibrational modes with their frequencies dependent on the relative positions of cobalt atoms. The magnetic and vibrational properties have been studied in highly Co-doped ZnO samples that are characterized by a high possibility of metal clusters formation.
issn 1560-8034
url https://nasplib.isofts.kiev.ua/handle/123456789/120730
citation_txt Vibrational states of hexagonal ZnO doped with Co / I.M. Kupchak, N.F. Serpak, V.V. Strelchuk, D.V. Korbutyak // Semiconductor Physics Quantum Electronics & Optoelectronics. — 2015. — Т. 18, № 1. — С. 86-89. — Бібліогр.: 22 назв. — англ.
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first_indexed 2025-12-02T10:52:40Z
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