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dc.contributor.authorDonnelly, David W. ( )en_US
dc.date.accessioned2010-06-02T10:21:02Z
dc.date.available2012-02-24T10:21:02Z
dc.date.issued1995-07en_US
dc.identifier.citationDonnelly, D. W. (1995). Mode assignment for magnetic excitations associated with Co2+ impurities in antiferromagnetic FeF2. Physical Review B, 52(2), pp. 1042-1049.
dc.identifier.urihttps://digital.library.txstate.edu/handle/10877/4047
dc.description.abstractWe have performed far-infrared (FIR) absorption and Raman-scattering measurements on the Co-FeF2 system for Co concentrations 0.05 ≤ = x ≤ = 5%, in magnetic fields O ≤ H ≤ 30 kG applied parallel to the crystal c axis. In addition to a careful study of the H dependence of the previously reported impurity associated mode at 85 cm-1, we have observed an impurity-induced shift in the host two-magnon FIR absorption, and an impurity-pair excitation in Raman scattering at a frequency of 223 cm-1. Taken together, these results are shown to be inconsistent with the previous interpretation of the 85 cm-1 mode as being localized on the impurity spin (i.e., an s0 mode). Instead, from a mean-field cluster model, we show that the new observations are only consistent with an assignment of the original resonance to be that of a shell mode (s1). All of the data agrees with this assignment within the framework of the impurity Green's-function theory as well. The 85 cm-1 resonance is, to our knowledge, the first s1 impurity mode to have been observed, a not surprising result when one considers the rather stringent conditions on localization of an s1 mode contained in Tonegawa's Green's-function theory.en_US
dc.formatText
dc.format.extent8 pages
dc.format.medium1 file (.pdf)
dc.language.isoen
dc.publisherAmerican Physical Society
dc.sourcePhysical Review B, July 1, 1995, Vol. 52, No. 2, pp. 1042-1049.
dc.subjectMode assignmenten_US
dc.subjectMagnetic excitationsen_US
dc.subjectCo2+ impuritiesen_US
dc.subjectAntiferromagneticen_US
dc.subjectFeF2en_US
dc.subject.classificationPhysicsen_US
dc.titleMode Assignment for Magnetic Excitations Associated with Co2+ Impurities in Antiferromagnetic FeF2en_US
dc.typepublishedVersion
txstate.documenttypeArticle
dc.description.departmentPhysics


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