STRUCTURE AND MAGNETISM OF EPITAXIALLY STRAINED PD(001) FILMS ON FE(001) - EXPERIMENT AND THEORY

被引:88
作者
FULLERTON, EE
STOEFFLER, D
OUNADJELA, K
HEINRICH, B
CELINSKI, Z
BLAND, JAC
机构
[1] UNIV CALIF SAN DIEGO,DEPT PHYS,LA JOLLA,CA 92093
[2] INST PHYS & CHIM MAT STRASBOURG,CNRS,UMR 46,F-67037 STRASBOURG,FRANCE
[3] SIMON FRASER UNIV,DEPT PHYS,BURNABY,BC V5A 1S6,CANADA
[4] UNIV CAMBRIDGE,CAVENDISH LAB,DEPT PHYS,CAMBRIDGE CB3 0HE,ENGLAND
来源
PHYSICAL REVIEW B | 1995年 / 51卷 / 10期
关键词
D O I
10.1103/PhysRevB.51.6364
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We present an experimental and theoretical description of the structure and magnetism of epitaxially strained Pd(001) films on Fe(001) and in Fe/Pd/Fe(001) trilayers. The structure is determined by combining reflection high-energy electron diffraction and x-ray diffraction. For Fe/Au(001) bilayers and Fe/Pd/Au(001) trilayers grown by molecular-beam epitaxy on Ag(001), the Fe and Au layers are well represented by their bulk structure, whereas, thin Pd layers have a face-centered tetragonal structure with an in-plane expansion of 4.2% and an out-of-plane contraction of 7.2% (c/a=0.89). Theoretical ab initio studies of the interfacial structure indicate that the structural ground state of the epitaxially strained Pd layer is well described by a fct structure which maintains the bulk Pd atomic volume with small deviations at the interface. For Fe/Pd/Fe trilayers, the interlayer coupling oscillates with a period of 4 monolayers (ML) on a ferromagnetic background that crosses to weak antiferromagnetic coupling for thicknesses >12 ML of Pd. Strong ferromagnetic coupling observed below 5 ML of Pd indicates that 2 ML of Pd at each interface are ferromagnetically ordered. Theoretical studies of Fe3Pdn superlattices (where n is the number of Pd atomic layers) determine the polarization of the Pd layer and the interlayer magnetic coupling to depend strongly on the c/a ratio of the Pd layers. Modeling of a Pd layer with a constant-volume fct structure and one monolayer interfacial roughness find that the first 2 ML of the Pd is polarized in close agreement with the experimental results. Polarized neutron reflectivity results on an Fe(5.6 ML)/Pd(7 ML)/Au(20 ML) sample determine the average moment per Fe atom of 2.66±0.05μB. Calculations for the same structure show that this value is consistent with the induced Pd polarization. © 1995 The American Physical Society.
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页码:6364 / 6378
页数:15
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