Title :
Magnetic Properties of CoFeSiB/(Co, CoPtRh) Multilayer Microwires
Author :
Borza, Firuta ; Ovari, Tibor-A ; Corodeanu, Sorin ; Stoian, George ; Chiriac, Horia
Author_Institution :
Nat. Inst. of R&D for Tech. Phys., Iaşi, Romania
Abstract :
The magnetic and magnetotransport properties have been investigated in a family of multilayer glass-coated microwires with a soft CoFeSiB nucleus and magnetically harder Co and CoPtRh deposited outer layers. Their magnetic properties are mainly determined by the magnetic interactions between the magnetic phases, i.e., the magnetoelastic coupling generated by the supplementary mechanical stresses induced by the deposited layers and by the magnetostatic interactions between the soft magnetic inner core and the hard magnetic deposited layers. The deposition of 900 nm-thick hard magnetic layers (Co and CoPtRh) on the soft magnetic CoFeSiB glass-coated microwire leads to a biphase magnetic character. Isothermal annealing at 300 °C for 1 h of multilayer microwires determines a slight decrease of the coercive field, an increase in the relative magnetic permeability, and to an increase in the magnetoimpedance response, more significant for the CoFeSiB/Co multilayer microwires. The possibility to design the magnetic and magnetotransport properties through magnetic coupling and annealing makes these materials very competitive as the functional sensing elements.
Keywords :
annealing; boron alloys; cobalt; cobalt alloys; coercive force; interface magnetism; iron alloys; magnetic multilayers; magnetic permeability; magnetoelastic effects; platinum alloys; rhodium alloys; silicon alloys; 900 nm-thick hard magnetic layers; CoFeSiB-Co-CoPtRh; biphase magnetic character; coercive field; isothermal annealing; magnetic interactions; magnetic phases; magnetic properties; magnetically harder outer layers; magnetoelastic coupling; magnetoimpedance response; magnetostatic interactions; magnetotransport properties; mechanical stresses; multilayer glass-coated microwires; relative magnetic permeability; soft nucleus; Amorphous magnetic materials; Magnetic hysteresis; Magnetic multilayers; Magnetomechanical effects; Perpendicular magnetic anisotropy; Soft magnetic materials; Amorphous magnetic materials; Magnetization processes; Magneto-transport properties; Mulltilayer microwires; magnetization processes; magnetotransport properties; multilayer microwires;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2015.2441880