Theory of temperature-dependent electronic structure and photoemission of ultrathin ferromagnetic films

Surfaces and ultrathin films of ferromagnetic transition metals are modelled by large clusters with periodic boundary conditions parallel to the surface. For given average magnetizations, which correspond to finite temperatures, frozen configurations of fluctuating local magnetic moments are determi...

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Published inSolid state communications Vol. 93; no. 3; pp. 231 - 235
Main Authors Reiser, D., Henk, J., Gollisch, H., Feder, R.
Format Journal Article
LanguageEnglish
Published Oxford Elsevier Ltd 1995
Elsevier
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ISSN0038-1098
1879-2766
DOI10.1016/0038-1098(94)00651-2

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Abstract Surfaces and ultrathin films of ferromagnetic transition metals are modelled by large clusters with periodic boundary conditions parallel to the surface. For given average magnetizations, which correspond to finite temperatures, frozen configurations of fluctuating local magnetic moments are determined subject to an assumed short-range magnetic order. Within a tight-binding formalism without spin-orbit coupling, we recursively calculate for these configurations the one-electron Green function matrix elements, which yield the spin- and layer-resolved density of states and the spin- and angle-resolved photoemission current. Numerical results are presented for two ferromagnetic monolayers of Co on Cu(0 0 1). Spin-resolved photoemission spectra obtained for an average magnetization 0.2 M ( T = 0) and moderate short-range order agree reasonably with experimental data measured at room temperature.
AbstractList Surfaces and ultrathin films of ferromagnetic transition metals are modelled by large clusters with periodic boundary conditions parallel to the surface. For given average magnetizations, which correspond to finite temperatures, frozen configurations of fluctuating local magnetic moments are determined subject to an assumed short-range magnetic order. Within a tight-binding formalism without spin-orbit coupling, we recursively calculate for these configurations the one-electron Green function matrix elements, which yield the spin- and layer-resolved density of states and the spin- and angle-resolved photoemission current. Numerical results are presented for two ferromagnetic monolayers of Co on Cu(0 0 1). Spin-resolved photoemission spectra obtained for an average magnetization 0.2 M ( T = 0) and moderate short-range order agree reasonably with experimental data measured at room temperature.
Surfaces and ultrathin films of ferromagnetic transition metals are modelled by large clusters with periodic boundary conditions parallel to the surface. For given average magnetizations, which correspond to finite temperatures, frozen configurations of fluctuating local magnetic moments are determined subject to an assumed short-range magnetic order. Within a tight-binding formalism without spin-orbit coupling, for these configurations the one-electron Green function matrix elements are recursively calculated, which yield the spin- and layer-resolved density of states and the spin- and angle-resolved photoemission current. Numerical results are presented for two ferromagnetic monolayers of Co on Cu(001). Spin-resolved photoemission spectra obtained for an average magnetization 0.2 M (T = 0) and moderate short-range order agree reasonably with experimental data measured at room temperature.
Author Feder, R.
Reiser, D.
Henk, J.
Gollisch, H.
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Cites_doi 10.1103/PhysRevLett.64.1059
10.1016/0038-1098(92)90780-D
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10.1103/PhysRevLett.68.686
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Issue 3
Keywords D. electronic states
E. photoelectron spectroscopies
A. magnetic films and multilayers
Thin films
Electronic structure
Magnetization
Tight binding approximation
Monolayers
Theoretical study
Magnetic moments
Surfaces
Boundary conditions
Short-range order
Spin density
Photoelectron spectroscopy
Language English
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Snippet Surfaces and ultrathin films of ferromagnetic transition metals are modelled by large clusters with periodic boundary conditions parallel to the surface. For...
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SubjectTerms A. magnetic films and multilayers
Applied sciences
Condensed matter: electronic structure, electrical, magnetic, and optical properties
D. electronic states
E. photoelectron spectroscopies
Electronic structure and electrical properties of surfaces, interfaces, thin films and low-dimensional structures
Exact sciences and technology
Metals. Metallurgy
Physics
Surface and interface electron states
Surface states, band structure, electron density of states
Title Theory of temperature-dependent electronic structure and photoemission of ultrathin ferromagnetic films
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