Journal of Applied Physics
   
 
 
 
Previous Article
Mesoscopic quantized properties of magnetic-dipolar-mode oscillations in disk ferromagnetic particles
Magnetic-dipolar-mode or magnetostatic (MS) oscillations in ferrite samples have the wavelength much smaller than the electromagnetic wavelength at the same frequency and, at the same time, much large...
Next Article
Variational Monte Carlo study of a spin one quantum antiferromagnet on a fractal lattice
A variational Monte Carlo calculation is made on a spin one Heisenberg antiferromagnet on a fractal lattice. Ground state energy and spin correlation functions are computed for a Sierpiski gasket cont...

Magnetic and magneto-transport properties of electrodeposited magnetic nano-network on laser modified Au surface

J. Appl. Phys. 95, 6989 (2004); doi:10.1063/1.1667835

Issue Date: 1 June 2004

You are not logged in to this journal. Log in

F. Q. Zhu
Department of Physics and Astronomy, Johns Hopkins University, Baltimore, Maryland 21218

D. L. Fan and R. C. Cammarata
Department of Materials Science and Engineering, Johns Hopkins University, Baltimore, Maryland 21218

C. L. Chien
Department of Physics and Astronomy, Johns Hopkins University, Baltimore, Maryland 21218
Magnetic nano-network structure has been fabricated by electrochemical deposition Ni onto laser modified Au film. Scanning electron microscopy images show that the network has a three-dimensional interconnecting branch structure with branch diameter of about 100 nm, constructed from grains with diameter of about 25 nm. Because of this structure, the Ni network has enhanced coercivity, in-plane isotropy, and a combination of longitudinal and transverse anisotropic magnetoresistance. ©2004 American Institute of Physics.
History: Presented 8 January 2004
Permalink: http://link.aip.org/link/?JAPIAU/95/6989/1
BUY THIS ARTICLE   (US$28)
Download HTML Download Sectioned HTML Download PDF (216 kB) View Cart

KEYWORDS and PACS

Keywords
PACS
  • 75.70.Ak
    Magnetic properties of monolayers and thin films
  • 75.50.Vv
    High coercivity magnetic materials
  • 75.50.Cc
    Ferromagnetism of nonferrous metals and alloys
  • 73.50.Jt
    Galvanomagnetic and other magnetotransport effects in thin films including thermomagnetic effects
  • 75.75.+a
    Magnetic properties of nanostructures
  • 75.50.Tt
    Fine-particle magnetic systems; nanocrystalline materials
  • YEAR: 2004

RELATED DATABASES


To view database links for this article,
you need to log in.
To view database links for this article,
you need to log in.

PUBLICATION DATA

ISSN:
0021-8979 (print)   1089-7550 (online)
Publisher:
AIP is a member of CrossRef AIP

REFERENCES (13)

For access to fully linked references, you need to log in. For access to fully linked references, you need to Log in.
  1. T. M. Whitney, J. S. Jiang, P. C. Searson, and C. L. Chien, Science 261, 1316 (1993).
  2. K. Liu, K. Nagodawithana, P. C. Searson, and C. L. Chien, Phys. Rev. B 51, 7381 (1995).
  3. L. Piraux, S. Dubois, E. Ferain, R. Legras, and K. Ounadjela, J. Magn. Magn. Mater. 165, 352 (1997).
  4. R. Ferre, K. Ounadjela, J. M. George, L. Piraux, and S. Dubois, Phys. Rev. B 56, 14 066 (1997).
  5. S. Y. Chou, M. Wei, P. R. Krauss, and P. B. Fischer, J. Vac. Sci. Technol. B 12, 3695 (1994).
  6. R. L. White, R. M. H. Newt, and R. F. W. Pease, IEEE Trans. Magn. 33, 990 (1997).
  7. C. A. Ross, Henry I. Smith, T. Savas, M. Schattenburg, and M. Farhoud et al., J. Vac. Sci. Technol. B 17, 3168 (1999).
  8. Barnard, H. Fujiwara, V. R. Inturi, J. D. Jarratt, T. W. Scharf, and J. L. Weston, Appl. Phys. Lett. 69, 2758 (1996).
  9. J. L. Weston, A. Butera, D. Otte, and J. A. Barnard, J. Magn. Magn. Mater. 193, 515 (1999).
  10. A. Butera, Granular Matter 3, 93 (2001).
  11. ICDD-PDF #46-1441, #47-1049 (1997).
  12. N. Vandewalle and M. Ausloos, Phys. Rev. B 51, 597 (1995).
  13. M. Ausloos, N. Vandewalle, and R. Cloots, J. Magn. Magn. Mater. 140–144, 2185 (1995).

CITING ARTICLES

For access to citing articles, you need to log in.
For access to citing articles, you need to Log in.