DocumentCode :
47442
Title :
Optimized Monolithic 2-D Spin-Valve Sensor for High-Sensitivity Compass Applications
Author :
Ueberschar, O. ; Almeida, M.J. ; Matthes, P. ; Muller, M. ; Ecke, R. ; Ruckriem, R. ; Schuster, J. ; Exner, H. ; Schulz, S.E.
Author_Institution :
Fraunhofer Inst. for Electron. Nano Syst., Chemnitz, Germany
Volume :
51
Issue :
1
fYear :
2015
fDate :
Jan. 2015
Firstpage :
1
Lastpage :
4
Abstract :
We have designed and fabricated 2-D giant magnetoresistance spin-valve sensors on the basis of exchange-biased NiFe-CoFe/Cu/CoFe/IrMn nanolayers in monolithic integration for high-sensitivity compass applications. For a maximum signal-to-noise ratio, we have realized a focused double full-bridge layout with an antiparallel alignment of the pinned layer magnetization for neighboring meanders. This precise alignment is achieved with microscopic resolution by laser heating and subsequent in-field cooling. Striving for high-signal sensitivity and low hysteresis, we study in detail how the geometry of the constituent single meanders influences their magnetic structure and the resulting electronic transport properties. The investigated geometrical parameters include stripe width, stripe length, U-turn material, and total meander length. Moreover, the influence of the relative alignment between reference magnetization and shape anisotropy is studied. We compare our experimental results to the predictions of tailored micromagnetic simulations. Applying the best-suited meander geometry, we demonstrate how the developed 2-D sensor may be readily employed to determine the direction of small magnetic fields, such as that of the Earth, as a 2-D vector with high spatial (~1mm) and temporal (~1ms) resolution.
Keywords :
compasses; cooling; copper; exchange interactions (electron); giant magnetoresistance; iridium alloys; iron alloys; magnetic anisotropy; magnetic multilayers; magnetic sensors; magnetic structure; manganese alloys; nanofabrication; nanomagnetics; nanosensors; nanostructured materials; nickel alloys; spin valves; 2D giant magnetoresistance spin-valve sensors; 2D vector; NiFe-CoFe-Cu-CoFe-IrMn; U-turn material; antiparallel alignment; constituent single meander geometry; electronic transport properties; exchange-biased NiFe-CoFe-Cu-CoFe-IrMn nanolayers; focused double full-bridge layout; geometrical parameters; high-sensitivity compass applications; in-field cooling; laser heating; magnetic structure; maximum signal-to-noise ratio; microscopic resolution; monolithic integration; optimized monolithic 2D spin-valve sensor; pinned layer magnetization; relative alignment; shape anisotropy; small magnetic field direction; spatial resolution; stripe length; stripe width; temporal resolution; total meander length; Anisotropic magnetoresistance; Giant magnetoresistance; Magnetic hysteresis; Magnetization; Perpendicular magnetic anisotropy; Sensitivity; Electronic compass; giant magnetoresistance (GMR); multiaxis magnetic sensor; spin valve (SV);
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2014.2358802
Filename :
7029246
Link To Document :
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