Title :
CPP–GMR Heads With a Current Screen Layer for 300
Recording
Author :
Nakamoto, Kazuhiro ; Hoshiya, Hiroyuki ; Katada, Hiroyuki ; Hoshino, Katsumi ; Yoshida, Nobuo ; Shiimoto, Masato ; Takei, Hisako ; Sato, Yo ; Hatatani, Masahiko ; Watanabe, Katsuro ; Carey, Matthew ; Maat, Stefan ; Childress, Jeffrey
Author_Institution :
Central Res. Lab., Hitachi Ltd., Odawara
Abstract :
Current-perpendicular-to-plane (CPP) giant magnetoresistive (GMR) heads with a current screen layer were fabricated, and the recording performance was measured. An output voltage of 1.9 mV and head-amp signal-to-noise ratio (SNR) of about 30 dB were obtained from a 50-nm-wide head with an operating voltage of 120 mV. The MR ratio was 4%-5%, shield gap was 36 nm and resistance was 72 Omega. With using the thermal fly-height control (TFC), the fabricated head showed a potential to yield a 382 Gb/in2 recording (1252 kBPI times 305 kTPI). The current screen structure reduced the spin torque noise since just a low sensing current of 1-2 mA was required for obtaining a high output. Newly developed CPP-GMR films with a current screen layer showed the MR ratio of 18%-19% with the RA product of 0.2-0.3 Omega ldr mum2. Calculation showed that this film allows us to achieve 30 dB or more in the head-amp SNR when the sensor width was 40 nm or larger. The current screen CPP-GMR head is thus an attractive candidate that has a high potential suitable for an areal density of 500 Gb/in2 or more. Below 40 nm, an all metal CPP-GMR head with the MR ratio of 10% or more would be the best candidate.
Keywords :
giant magnetoresistance; magnetic heads; magnetic recording; current screen layer; current-perpendicular-to-plane giant magnetoresistive heads; distance 36 nm; head-amp signal-to-noise ratio; operating voltage; recording; resistance 72 ohm; shield gap; size 50 nm; spin torque noise; voltage 1.9 mV; voltage 120 mV; Current measurement; Electrical resistance measurement; Giant magnetoresistance; Magnetic heads; Magnetic noise; Magnetic sensors; Signal to noise ratio; Torque; Tunneling magnetoresistance; Voltage; CPP–GMR; magnetic head; magnetic recording; noise; spin torque;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2007.911022