TY - JOUR
T1 - Synthesis of crystalline CoFex nanowire arrays through high voltage pulsed electrochemical deposition
AU - Ji, Renlong
AU - Cao, Chuanbao
AU - Chen, Zhuo
AU - Yao, Ruimin
PY - 2014/8
Y1 - 2014/8
N2 - A high voltage pulsed electrochemical deposition (50 Hz, -50 V) technique was used to synthesize CoFex (x=1.57, 2.02) nanowire arrays in anodic aluminum oxide templates. The nanowire arrays (NA) are different in diameter (NA A, 40 nm; NA B, 50 nm), center-to-center distance (NA A, 60 nm; NA B, 100 nm) and length (NA A, 4 μm; NA B, 8 μm). Microstructural characterization shows high crystallinity of the formed nanowires. The magnetic measurements indicate that the nanowire arrays possess uniaxial anisotropy with the easy magnetization axis along the nanowire. When magnetic field is applied in this direction, the coercivities of both nanowire arrays are larger than 1600 Oe. The shape difference between two magnetization hysteresis loops is due to dipolar magnetostatic interaction, and analytical calculation is performed to interpret the magnetic properties as a function of the wire geometry. The results suggest that during high voltage electrodeposition, reduced atoms are highly energetic and the crystallographic growth planes can be (110), (111) and (211).
AB - A high voltage pulsed electrochemical deposition (50 Hz, -50 V) technique was used to synthesize CoFex (x=1.57, 2.02) nanowire arrays in anodic aluminum oxide templates. The nanowire arrays (NA) are different in diameter (NA A, 40 nm; NA B, 50 nm), center-to-center distance (NA A, 60 nm; NA B, 100 nm) and length (NA A, 4 μm; NA B, 8 μm). Microstructural characterization shows high crystallinity of the formed nanowires. The magnetic measurements indicate that the nanowire arrays possess uniaxial anisotropy with the easy magnetization axis along the nanowire. When magnetic field is applied in this direction, the coercivities of both nanowire arrays are larger than 1600 Oe. The shape difference between two magnetization hysteresis loops is due to dipolar magnetostatic interaction, and analytical calculation is performed to interpret the magnetic properties as a function of the wire geometry. The results suggest that during high voltage electrodeposition, reduced atoms are highly energetic and the crystallographic growth planes can be (110), (111) and (211).
KW - Magnetic property
KW - Magnetostatic interaction
KW - Pulsed electrochemical deposition
UR - http://www.scopus.com/inward/record.url?scp=84898638002&partnerID=8YFLogxK
U2 - 10.1016/j.jmmm.2014.03.054
DO - 10.1016/j.jmmm.2014.03.054
M3 - Review article
AN - SCOPUS:84898638002
SN - 0304-8853
VL - 363
SP - 95
EP - 102
JO - Journal of Magnetism and Magnetic Materials
JF - Journal of Magnetism and Magnetic Materials
ER -