DocumentCode :
760379
Title :
Achieving Subnanometer Precision in a MEMS-Based Storage Device During Self-Servo Write Process
Author :
Sebastian, Abu ; Pantazi, Angeliki ; Moheimani, S.O.R. ; Pozidis, Haris ; Eleftheriou, Evangelos
Author_Institution :
Zurich Res. Lab., Int. Bus. Machines (IBM), Zurich
Volume :
7
Issue :
5
fYear :
2008
Firstpage :
586
Lastpage :
595
Abstract :
In probe-based data storage devices, microelectromechanical system-based microscanners are typically used to position the storage medium relative to the read/write probes. Global position sensors are employed to provide position information across the full scan range of these microscanners. However, to achieve repeatable positioning, it is also necessary to have medium-derived position information. Dedicated storage fields known as servo fields are employed to obtain this medium-derived position information. The servo-patterns on these servo fields have to be written using the global position sensors prior to the regular operation of the storage device by employing a scheme known as ldquoself-servo writerdquo process. During this process, subnanometer positioning resolutions, well below that provided by the global position sensors, are desirable. Such precise positioning at acceptable bandwidth requires the directed design of the closed-loop noise sensitivity transfer function so as to minimize the impact of sensing noise. This paper describes control architectures in which the impact of measurement noise on positioning is minimal while providing satisfactory tracking performance. It is estimated that the positioning error due to sensing noise is a remarkably low 0.25 nm. Experimental results are also presented that show error-free operation of the device at high densities.
Keywords :
Global Positioning System; micromechanical devices; nanotechnology; servomechanisms; storage media; MEMS; global position sensors; measurement noise; microelectromechanical system; microscanners; self-servo write process; storage device; subnanometer positioning resolutions; ${H}_infty$ controllers; nanopositioning; precision positioning; probe-based data storage; resonant controllers; servo write process;
fLanguage :
English
Journal_Title :
Nanotechnology, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-125X
Type :
jour
DOI :
10.1109/TNANO.2008.926441
Filename :
4547423
Link To Document :
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