Title :
CPP-GMR Film With ZnO-Based Novel Spacer for Future High-Density Magnetic Recording
Author :
Shimazawa, Koji ; Tsuchiya, Yoshihiro ; Mizuno, Tomohito ; Hara, Shinji ; Chou, Tsutom ; Miyauchi, Disuke ; Machita, Takahiko ; Ayukawa, Toshiyuki ; Ichiki, Tsuyoshi ; Noguchi, Kiyoshi
Author_Institution :
Technol. Group, TDK Corp., Nagano, Japan
fDate :
6/1/2010 12:00:00 AM
Abstract :
A new type of CPP-GMR film, which has ZnO-based novel spacer, was studied. A high MR ratio of 21.4% at RA of about 0.2 ¿¿m2 at room temperature was obtained by optimization of the fabrication condition of ZnO layer. Based on HRTEM observation, the ZnO spacer is crystalline which have c-axis orientation with wurtzite structure, and there are no metallic portions. The measured noise is in good agreement with Johnson noise fitted at T = 400(K). This result suggests that the contact at our ZnO-based spacer interface with magnetic electrode is ohmic. First principle calculations that used a simple model supported the existence of large spin dependent scattering at the interface of ZnO layer. These results indicate that higher signal to noise ratio can be achieved in this type of CPP GMR head even with lower MR ratio than MTJ head and it is very attractive candidate of future magnetic read sensor in HDDs.
Keywords :
II-VI semiconductors; ab initio calculations; giant magnetoresistance; magnetic heads; perpendicular magnetic recording; thermal noise; transmission electron microscopy; zinc compounds; CPP-GMR film; HRTEM observation; Johnson noise; ZnO; c-axis orientation; fabrication condition optimization; first principle calculation; high density magnetic recording; magnetic electrode; magnetic read sensor; spin dependent scattering; wurtzite structure; zinc oxide spacer; Crystallization; Electrodes; Fabrication; Magnetic films; Magnetic heads; Magnetic noise; Magnetic recording; Noise measurement; Temperature; Zinc oxide; CPP-GMR; HDD; Johnson noise; KKR method; MTJ; Zinc oxide; first principle study; ohmic contact; shot noise; spin injection; work function;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2010.2042574