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Operational parameters for sub-nano tesla field resolution of phmr sensors in harsh environments

Title
Operational parameters for sub-nano tesla field resolution of phmr sensors in harsh environments
Author(s)
Jeon, TaehyeongDas, Proloy TaranKim, MijinJeon, ChangyeopLim, ByeonghwaSoldatov, IvanKim, CheolGi
Issued Date
2021-10
Citation
Sensors, v.21, no.20
Type
Article
Author Keywords
Field detectivityMagnetoresistive sensorsPlanar-Hall magnetoresistanceSensitivity
Keywords
Magnetic sensorsDetectivityField detectivityField resolutionHall magnetoresistanceMagneto resistive sensorsMagnetoresistive sensorsOperational parametersPlanar-hall magnetoresistanceSensitivitySensor configurationsSpectral density
ISSN
1424-8220
Abstract
The resolution of planar-Hall magnetoresistive (PHMR) sensors was investigated in the frequency range from 0.5 Hz to 200 Hz in terms of its sensitivity, average noise level, and detectivity. Analysis of the sensor sensitivity and voltage noise response was performed by varying operational parameters such as sensor geometrical architectures, sensor configurations, sensing currents, and temperature. All the measurements of PHMR sensors were carried out under both constant current (CC) and constant voltage (CV) modes. In the present study, Barkhausen noise was revealed in 1/f noise and found less significant in the PHMR sensor configuration. Under measured noise spectral density at optimized conditions, the best magnetic field detectivity was achieved better than 550 pT/√ Hz at 100 Hz and close to 1.1 nT/√ Hz at 10 Hz for a tri-layer multi-ring PHMR sensor in an unshielded environment. Furthermore, the promising feasibility and possible routes for further improvement of the sensor resolution are discussed. © 2021 by the authors. Licensee MDPI, Basel, Switzerland.
URI
http://hdl.handle.net/20.500.11750/15747
DOI
10.3390/s21206891
Publisher
MDPI
Related Researcher
  • 김철기 Kim, CheolGi
  • Research Interests Magnetic Materials and Spintronics; Converging Technology of Nanomaterials and Biomaterials; Bio-NEMS;MEMS
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Appears in Collections:
Department of Physics and Chemistry Lab for NanoBio-Materials & SpinTronics(nBEST) 1. Journal Articles

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