Spin-canting effects in GMR sensors with wide dynamic field range
Clemens Muehlenhoff, Christoph Vogler, Wolfgang Raberg, Dieter Suess,, Manfred Albrecht

TL;DR
This paper demonstrates how using a perpendicular synthetic antiferromagnet as a reference in GMR sensors with an in-plane free layer significantly extends the linear dynamic range, with design and spin-canting effects analyzed through simulations.
Contribution
It introduces a novel GMR sensor design employing p-SAFs as references and investigates spin-canting effects, enhancing the sensor's dynamic range and controllability.
Findings
p-SAFs with exchange fields up to 10 kOe were created.
Using p-SAFs as references extends the GMR sensor's linear range.
Micromagnetic simulations reveal spin-canting effects influence transfer curves.
Abstract
Magnetoresistive (xMR) sensors find extensive application in science and industry, replacing Hall sensors in various low field environments. While there have been some efforts in increasing the dynamic field range of xMR sensors, Hall sensors remain to dominate high field applications due to their wide linear range. Using a perpendicular magnetized reference system and an in-plane free layer allows us to overcome this disadvantage of xMR sensors, and, furthermore, investigate spin-canting effects in interlayer exchange coupled perpendicular synthetic antiferromagnets (p-SAF). We created p-SAFs with exchange coupling fields of up to 10 kOe, based on magnetic Co/Pt multilayer systems. The p-SAFs are either designed as "single" p-SAFs, where two Co/Pt multilayers are interlayer exchange coupled via a 4 {\AA} thick Ru spacer, or as "double" p-SAFs, where an additional Co layer is interlayer…
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