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Angle- and Temperature- Dependent Magnetic Circular Dichroism in Gd(0001) Core-Level Photoemission

Published online by Cambridge University Press:  15 February 2011

J. Morais
Affiliation:
Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA
R. Denecke
Affiliation:
Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA Department of Physics, University of California at Davis, Davis, CA 95616, USA
R. X. Ynzunza
Affiliation:
Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA Department of Physics, University of California at Davis, Davis, CA 95616, USA
J.G. Menchero
Affiliation:
Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA Department of Physics, University of California at Berkeley, Berkeley, CA 94720, USA
J. Liesegang
Affiliation:
Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA
C. S. Fadley
Affiliation:
Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA Department of Physics, University of California at Davis, Davis, CA 95616, USA
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Abstract

Recent results on the dependence of the magnetic circular dichroism on the angle and temperature for thick (100 ML) films of Gd(0001) are presented. Strong dichroic effects were observed in 4d core-level photoemission for the magnetized films, which showed excellent agreement with an atomic many-particle description recently published [1]. The angular dependence of the magnetic dichroism has been discussed taking into account photoelectron diffraction effects. In addition, an indication of a higher surface Curie temperature has been observed in the temperature- dependent measurements.

Type
Research Article
Copyright
Copyright © Materials Research Society 1997

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References

REFERENCES

1. van der Laan, G., Arenholz, E., Navas, E., Bauer, A., Kaindl, G., Phys. Rev. B53, R5998 (1996)Google Scholar
2. (a) Van Hove, M.A., Kaduwela, A.P., Xiao, H., Schattke, W., and Fadley, C.S., J. Elee. Spec. and Rel. Phen. 80, 137 (1996); (b) J. Menchero, J. Moráis, R. Denecke, M.A. Van Hove, and C. S. Fadley (to be published)Google Scholar
3. (a) Hussain, Z., Huff, W. R. A., Keller, S. A., Moller, E. J., Heimann, P. A., McKinney, W., Padmore, H. A., Fadley, C. S., and Shirley, D. A., J. Elee. Spec, and Rel. Phen. 80, 401 (1996);Google Scholar
(b) Fadley, C.S., Van Hove, M.A., Hussain, Z., and Kaduwela, A.P., J. Elee. Spec, and Rel. Phen. 75, 273 (1995).Google Scholar
4. Farle, M., Lewis, W. A., J. Appl. Phys. 75, 5604 (1994)Google Scholar
5. Tang, H., Weiler, D., Walker, T. G., Scott, J. C., Chapert, C. et al., Phys. Rev. Lett. 71, 444 (1993) and references therein.Google Scholar