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dc.contributor.author Troyanchuk, I.O.
dc.contributor.author Bushinsky, M.V.
dc.contributor.author Karpinsky, D.V.
dc.contributor.author Sirenko, V.A.
dc.date.accessioned 2017-05-21T17:19:48Z
dc.date.available 2017-05-21T17:19:48Z
dc.date.issued 2012
dc.identifier.citation Antiferromagnet–ferromagnet transition in the cobaltites / I.O. Troyanchuk, M.V. Bushinsky, D.V. Karpinsky // Физика низких температур. — 2012. — Т. 38, № 7. — С. 833-841. — Бібліогр.: 53 назв. — англ. uk_UA
dc.identifier.issn 0132-6414
dc.identifier.other PACS: 75.50.Dd, 75.30.–m, 75.60.Ej
dc.identifier.uri http://dspace.nbuv.gov.ua/handle/123456789/117271
dc.description.abstract The three series oxygen-deficient cobaltites La₀.₅Ba₀.₅CoO₃₋δ, LnBaCo₂O₅.₅ and Sr₂YCo₄O₁₀.₅ have been studied. It has been shown that La₀.₅Ba₀.₅CoO₃ is an insulating ferromagnet whereas La₀.₅Ba₀.₅CoO₂.₇₅ is a pure antiferromagnet in which the oxygen vacancies are disordered. The oxygen-vacancies ordering leads to appearance of the ferromagnetic component apparently due to a formation of the noncollinear magnetic structure. The antiferromagnet–“ferromagnet” transition is accompanied by a giant magnetoresistance. It is suggested that in the ferromagnetic oxidized compounds Co³⁺ and Co⁴⁺ ions adopt intermediate spin state whereas for antiferromagnetic (Co⁴⁺-free) compositions Co³⁺ ions have high-spin state (pyramids CoO₅) and dominant low-spin state (octahedra CoO₆). In both ferromagnetic and antiferromagnetic compounds the superexchange via oxygen plays an essential role in a formation of the magnetic properties. uk_UA
dc.description.sponsorship The authors would like to acknowledge the financial support of the BRFFI (Grant Nos. T11D-003). uk_UA
dc.language.iso en uk_UA
dc.publisher Фізико-технічний інститут низьких температур ім. Б.І. Вєркіна НАН України uk_UA
dc.relation.ispartof Физика низких температур
dc.subject Магнетизм uk_UA
dc.title Antiferromagnet–ferromagnet transition in the cobaltites uk_UA
dc.type Article uk_UA
dc.status published earlier uk_UA


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