Hostname: page-component-586b7cd67f-dlnhk Total loading time: 0 Render date: 2024-11-25T15:21:55.653Z Has data issue: false hasContentIssue false

Correlation Of Magnetic Dichroism in X-Ray Absorption and Photoelectron Emission using Ultrathin Magnetic Alloy Films

Published online by Cambridge University Press:  15 February 2011

J.G. Tobin
Affiliation:
Lawrence Livermore National Laboratory Chemistry and Materials Science Directorate Livermore, CA
K.W. Goodman
Affiliation:
Lawrence Livermore National Laboratory Chemistry and Materials Science Directorate Livermore, CA
G.J. Mankey
Affiliation:
Pennsylvania State University Department of Physics University Park, PA
R.F. Willis
Affiliation:
Pennsylvania State University Department of Physics University Park, PA
J.D. Denlinger
Affiliation:
Lawrence Berkeley Laboratory Advanced Light Source Berkeley, CA
E. Rotenberg
Affiliation:
Lawrence Berkeley Laboratory Advanced Light Source Berkeley, CA
A. Warwick
Affiliation:
Lawrence Berkeley Laboratory Advanced Light Source Berkeley, CA
Get access

Abstract

We have begun a program to characterize magnetic alloy overlayers using both magnetic x-ray circular dichroism (MXCD) and magnetic x-ray linear dichroism (MXLD). This will allow a direct comparison of MXCD-absorption and MXLD-photoelectron emission. First results from the Advanced Light Source will be presented.

Type
Research Article
Copyright
Copyright © Materials Research Society 1996

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

1. Tobin, J.G., Waddill, G.D., Tamura, E., Sterne, P.A., Bedrossian, P.J., Pappas, D.P., Guo, X., and Tong, S.Y., Surf. Rev. Lett. XX, XXX (1996).Google Scholar
2. Waddill, G.D., Tobin, J.G., Guo, X., and Tong, S.Y., Phys. Rev. B 50,6774 (1994).Google Scholar
3. Waddill, G.D., Tobin, J.G., and Pappas, D.P., Phys. Rev. B 46, 552 (1992).Google Scholar
4. Starke, K., Baumgarten, L., Arenholz, E., Navas, E., and Kaindl, G., Phys. Rev. B 50, 1317 (1994).Google Scholar
5. Baumgarten, L., Schneider, C.M., Petersen, H., Schafers, F., and Kirschner, J., Phys. Rev. Lett. 65, 482 (1990).Google Scholar
6. Roth, C.H., Hillebrecht, F.U., Rose, H.B., and Kisker, E., Phys. Rev. Lett. 70, 3479 (1993); Solid State Commun. 86,647 (1993).Google Scholar
7. Rossi, G., Sirotti, F., Cherepkov, N.A., Cambet-Famoux, F., and Panaccione, F., Solid State Commun. 90 557 (1994); F. Sirotti and G. Rossi, Phys. Rev. B 49, 15682 (1994).Google Scholar
8. Kuch, W., Lin, M.T., Steinhogl, W., Schneider, C.M., Venus, D., and Kirschner, J., Phys. Rev B 51 609 (1995).Google Scholar
9. Schneider, C.M., Venus, D., and Kirschner, I., Phys. Rev. B 45, 5041 (19921).Google Scholar
10. Tamura, E., Waddill, G.D., Tobin, J.G., and Sterne, P.A., Phys. Rev. Lett 63, 3642 (1992).Google Scholar
11. Tobin, J.G., Goodman, K.W., Mankey, G.M., Willis, R.F., Denlinger, J.D., Rotenberg, E., and Warwick, A., J. Appl. Phys. 79, XXX (1996).Google Scholar
12. Schutz, G., Wagner, W., Wilhelm, W., Kienle, P., Zeller, R., Frahm, P., and Materlik, G., Phys. Rev. Lett. 58, 737 (1987).Google Scholar
13. Chen, C.T., Sette, F., Ma, Y., and Modesti, S., Phys. Rev. B. 42, 7262 (1990).Google Scholar
14. Tobin, J.G., Waddill, G.D., and Pappas, D.P., Phys. Rev. Lett. 68,3642 (1992); J.G. Tobin, G.D. Waddill, A.F. Jankowski, P.A. Sterne, and D.P. Pappas, Phys. Rev. B 52, 6530 (1995).Google Scholar
15. Stohr, J., et al., Science, 259, 658 (1993).Google Scholar
16. Mankey, G.J., Kief, M.T., and Willis, R.F., J. Vac. Sci. Technol. A 9, 1595 (1991); F. Huang, M.T. Kief, M.J. Mankey, and R.F. Willis, Phys. Rev. B 49, 3962 (1994).Google Scholar