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
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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 |
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http://link.aip.org/link/?JAPIAU/95/6989/1 |
KEYWORDS and PACS
gold,
nickel,
electrodeposition,
magnetic thin films,
ferromagnetic materials,
laser ablation,
grain size,
magnetoresistance,
magnetic hysteresis,
magnetic anisotropy,
coercive force,
remanence,
surface morphology,
scanning electron microscopy,
nanostructured materials
- 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
PUBLICATION DATA
0021-8979 (print)
1089-7550 (online)
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