Media for 10 Gb/in(2) hard disk storage: Issues and status

被引:114
作者
Lambeth, DN
Velu, EMT
Bellesis, GH
Lee, LL
Laughlin, DE
机构
[1] Data Storage Systems Center, Carnegie Mellon University, Pittsburgh
关键词
D O I
10.1063/1.361876
中图分类号
O59 [应用物理学];
学科分类号
摘要
Future 10 Gb/in.(2) recording densities represent submicron trackwidths and sub-100 nm bit lengths. This requires extremely small magnetic switching units and very high coercivities of the media to satisfy the signal-to-noise ratio requirements. At the same time the question of magnetic thermal stability and the lack of transducers capable of performing at these densities makes it difficult to evaluate media. An uncoupled, highly uniform magnetic grain size of about 10 nm is a compromise toward maintaining an adequately low media noise and yet maintaining magnetic stability. Here we discuss current media construction, the detrimental role of substrate roughness, the role of new media structures and alloys on microstructure and magnetic properties as well as techniques for evaluating media performance prior to the availability of the required playback heads. (C) 1996 American Instirute of Physics.
引用
收藏
页码:4496 / 4501
页数:6
相关论文
共 36 条
[21]   NOISE PROPERTIES OF MULTILAYERED CO-ALLOY MAGNETIC RECORDING MEDIA [J].
MURDOCK, ES ;
NATARAJAN, BR ;
WALMSLEY, RG .
IEEE TRANSACTIONS ON MAGNETICS, 1990, 26 (05) :2700-2705
[22]  
NAKMURA A, 1993, JPN J APPL PHYS, V32, pL1410
[23]   SUBMICRON PATTERNING OF THIN COBALT FILMS FOR MAGNETIC STORAGE [J].
NEW, RMH ;
PEASE, RFW ;
WHITE, RL .
JOURNAL OF VACUUM SCIENCE & TECHNOLOGY B, 1994, 12 (06) :3196-3201
[24]   MICROMAGNETIC AND EXPERIMENTAL STUDIES OF COPTCR POLYCRYSTALLINE THIN-FILM MEDIA WITH BICRYSTAL MICROSTRUCTURE [J].
PENG, QS ;
BERTRAM, HN ;
FUSSING, N ;
DOERNER, M ;
MIRZAMAANI, M ;
MARGULIES, D ;
SINCLAIR, R ;
LAMBERT, S .
IEEE TRANSACTIONS ON MAGNETICS, 1995, 31 (06) :2821-2823
[25]   LASER TEXTURING FOR LOW-FLYING-HEIGHT MEDIA [J].
RANJAN, R ;
LAMBETH, DN ;
TROMEL, M ;
GOGLIA, P ;
LI, Y .
JOURNAL OF APPLIED PHYSICS, 1991, 69 (08) :5745-5747
[26]  
RANJAN R, 1991, Patent No. 5062021
[27]  
RANJAN RY, 1992, Patent No. 5108781
[28]   MAGNETOELECTRONICS TODAY AND TOMORROW [J].
SIMONDS, JL .
PHYSICS TODAY, 1995, 48 (04) :26-32
[29]  
TANG C, IN PRESS IEEE T MAGN
[30]  
TASKER PW, 1984, ADV CERAM, V10, P176