Issue 2, 2012

Magnetic field driving gradient effects on the microstructure in amorphous–nanocrystalline cobalt alloy ribbons

Abstract

Field effects on the early crystallization of Co-rich amorphous ribbons (Co68.15Fe4.35Si12.5B15, atomic%) performed at 450 °C for 30 minutes in an applied 10 Oe longitudinal or transverse external magnetic field are investigated by comparing with the as-spun and annealed samples in zero applied magnetic field. Results indicate that the crystallization on the surface skin of the ribbon differs from that of the middle section due to the combined effects from the field direction and the defects or stress characteristics across the ribbons. In particular, the ribbons annealed under a transverse field exhibit an extremely distinct graded microstructure across the ribbon, which features amorphous-phased skin layers (top and bottom) of about 4–5 μm thickness and a middle amorphous–nanocrystalline composite layer about 10–12 μm thick, with the nanograins of 434 ± 99 nm dispersing in the amorphous matrix.

Graphical abstract: Magnetic field driving gradient effects on the microstructure in amorphous–nanocrystalline cobalt alloy ribbons

Supplementary files

Additions and corrections

Article information

Article type
Communication
Submitted
29 Jul 2011
Accepted
15 Sep 2011
First published
16 Nov 2011

Nanoscale, 2012,4, 386-393

Magnetic field driving gradient effects on the microstructure in amorphous–nanocrystalline cobalt alloy ribbons

Z. Tang, Y. Song, Q. Sun, T. Zhang and Y. Jiang, Nanoscale, 2012, 4, 386 DOI: 10.1039/C1NR10968E

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