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ieee international magnetics conference | 1997

Low Fringe-Field And Narrow-Track MR Heads

Yimin Guo; Jei-Wei Chang; Stone Shi; Kochan Ju

The ABS focused ion beam technique was utilized to pattern MR heads into different geometry at track edges to study side-writing performance. By spinstand testing, both written track width and erase distance were measured. An analytical model was developed to analyze the dependence of the side-writing on the etching step length. Effects of the etching width, which affects the total etching time, were also studied.


IEEE Transactions on Magnetics | 1999

5 Gb/in/sup 2/ recording with dual stripe AMR heads and low noise thin film disks

H.L. Hu; Kochan Ju; Cherng-Chyi Han; D. Chabbra; Yimin Guo; Cheng T. Horng; Jei-Wei Chang; T. Torng; Gus Yeh; B.B. Lal; S. Malhotra; Zhaoguo Jiang; M.M. Yang; M. Sullivan; J. Chao

We have demonstrated magnetic recording at an areal density of 5 Gb/in/sup 2/ using dual stripe magnetoresistive heads (DSMR) on low noise and low-glide height quaternary CoCrTa-based alloy thin film disks. The data rate is 120 Mb/sec with a PR4 channel, and the on-track error rate achieved is around 10/sup -9/. The demonstration was accomplished in two cases using two different types of heads. In the first case, it was done with a DSMR head having shield-shield spacing of 0.165 /spl mu/m and 1 /spl mu/m stripe height flying at 25 nm, resulting in a linear density of 321.7 KBPI, and a track density of 15.6 KTPI. The second case was performed with DSMR heads having shield-shield spacing of 0.18 /spl mu/m and 8 /spl mu/m stripe height flying at proximity height of 12 nm, achieving a 358.75 KBPI and 13.8 KTPI. This is the highest linear density published so far for either GMR or AMR heads. It is the direct consequence of high signal/noise of DSMR heads and proximity recording over low noise, low-glide-height media. To explore the large dynamic range of DSMR heads, this study was also done with a variety of low noise disks with Mrt ranging broadly from 0.45 to 1.0 memu/cm/sup 2/ and coercivity of 3000 Oe.


ieee international magnetics conference | 1999

10 Gb/in/sup 2/ recording with DSMR AMR heads on low noise thin film disks

H.L. Hu; Kochan Ju; Cherng-Chyi Han; D. Chhabra; Y.S. Tang; Yimin Guo; Cheng Hrong; T. Torng; B.B. Lal; S. Malhotra; Zhaoguo Jiang; Ming M. Yang; Mike Sullivan; Jim Chao

Areal density of 5 Gb/inz with AMR SAL was demonstrated[l] in the past, and more recently, with DSMR heads 121. Areal density of more than 10 Gb/in* with spin valve heads has been reported this yeafl5,SJ. However, in these demonstrations, there appears to have some practical weaknesses which make them unattractive for immediate practical applications. The details for the above spin valve heads has yet to be published but in one case [6]. using FIB write heads together with spin valve read heads is not yet practical. Here we will report 10 Gb/inz demonstration using dual stripe magneto-resistive heads [DSMR] with the current manufacturing process.


Archive | 2008

Low switching current MTJ element for ultra-high STT-RAM and a method for making the same

Cheng T. Horng; Ru-Ying Tong; Yimin Guo


Archive | 2004

Magnetic random access memory array with coupled soft adjacent magnetic layer

Yimin Guo; Tai Min; Po-Kang Wang; Xi Zeng Shi


Archive | 1996

Low fringe-field and narrow write-track magneto-resistive (MR) magnetic read-write head

Jei-Wei Chang; Kochan Ju; Yimin Guo; Xizeng Shi; Arthur Hungshin Tao


Archive | 2007

Spin transfer MRAM device with novel magnetic free layer

Yimin Guo; Cheng T. Horng; Ru-Ying Tong


Archive | 2001

Canted longitudinal patterned exchange biased dual-stripe magnetoresistive (DSMR) sensor element and method for fabrication thereof

Yimin Guo; Kochan Ju; Po-Kang Wang; Cherng-Chyi Han; Hui-Chuan Wang


Archive | 1996

High track density dual stripe magnetoresistive (DSMR) head

Xizeng Shi; Yimin Guo; Kochan Ju; Cherng-Chyi Han; Yimin Hsu; Jei-Wei Chang


Archive | 2004

Method and system for providing a magnetic element including passivation structures

Xizeng Shi; Po-Kang Wang; Yimin Guo; Tai Min

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