Title :
Electrodeposited CoNiP Hard Magnetic Nanowires in Polycarbonate Membrane
Author :
Rani, V. Sudha ; Anandakumar, S. ; Kim, K.W. ; Yoon, Seok Soo ; Jeong, J.-R. ; Kim, CheolGi
Author_Institution :
Dept. of Mater. Sci. & Eng., Chungnam Nat. Univ., Daejeon
fDate :
6/1/2009 12:00:00 AM
Abstract :
An array of CoNiP magnetic nanowires were grown in polycarbonate membrane using potentiostatic electrodeposition technique under three electrodes configuration. The commercially available track etched polycarbonate membranes of thickness 6 mum with pore size of 50 nm diameter were used in these experiments. The electrolyte bath consists of NiCl2-6.81 g/l, CoCl2-2.76 g/l, NaH2 PO2-2.59 g/l, H 3BO3-2.49 g/l, NaCl-2.20 g/l, Saccharin-0.8 g/l was used for deposition of CoNiP magnetic nanowires. The main aim of this work focuses on growth conditions, structural and magnetic properties of the CoNiP nanowires. In this context first we observed three different growths of nanowire lengths 1.21 mu m, 4.31 mu m and 6 mu m at three different deposition times 30 min, 60 min, and 90 min, respectively. The X-ray diffraction patterns of CoNiP nanowires have shown the intermixture of fcc and hcp phases. The structural properties of the CoNiP nanowires were observed using scanning electron microscope (SEM). The magnetic properties of the CoNiP nanowires were observed using vibrating sample magnetometer (VSM), which show hard magnetic properties with no preferential magnetization direction of the nanowires having high coercivity values around 500 Oe.
Keywords :
X-ray diffraction; cobalt alloys; coercive force; electrochemical electrodes; electrodeposition; electrolytes; nanowires; nickel alloys; permanent magnets; phosphorus alloys; polymers; scanning electron microscopy; CoNiP; SEM; X-ray diffraction patterns; coercivity; electrodes configuration; electrolyte bath; hard magnetic nanowires; magnetic properties; magnetization direction; potentiostatic electrodeposition technique; scanning electron microscopy; structural properties; track etched polycarbonate membranes; vibrating sample magnetometer; Electrodeposition; magnetic properties; nanoporous templates; nanowires;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2009.2018657