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Development of a Three-Axis Planar Hall Magnetoresistance Sensor Using a Superparamagnetic Nanoparticle-Based Flux Guide
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- Title
- Development of a Three-Axis Planar Hall Magnetoresistance Sensor Using a Superparamagnetic Nanoparticle-Based Flux Guide
- Issued Date
- 2026-09
- Citation
- ADVANCED FUNCTIONAL MATERIALS, v.36, no.72
- Type
- Article
- Author Keywords
- tactile force sensing ; three-axis magnetic sensors ; vector magnetic field sensing ; planar Hall magnetoresistance ; superparamagnetic nanoparticle flux guides
- Keywords
- RESISTANCE
- ISSN
- 1616-301X
- Abstract
-
Accurate perception of 3D magnetic fields is essential for advanced spatial awareness in motion tracking and robotics. However, conventional magnetoresistance sensors typically lack out-of-plane sensitivity. Magnetic flux guides have been employed to redirect out-of-plane fields into the sensor plane, yet ferromagnetic flux guides introduce unwanted hysteresis, necessitating complex reset mechanisms that hinder miniaturization. Here, we present a highly sensitive 3D planar Hall magnetoresistance (PHMR) sensor integrated with a superparamagnetic nanoparticle-based flux guide (SPMFG). Crucially, microstructural tunability via field-assisted curing allows for application-specific optimization between precision and sensitivity. Randomly dispersed configurations provide strictly hysteresis-free operation (similar to 0 mT), whereas vertically aligned nanoparticle chains (Chain MFG) significantly amplify flux redirection efficiency. Although chain alignment introduces a small but finite residual hysteresis (0.3 mT), it achieves a 40% magnetic field conversion ratio and a threefold enhancement in z-axis sensitivity. This architectural flexibility bypasses the need for auxiliary coils, enabling a compact, power-efficient system realized through scalable inkjet printing. The platform's versatility is further demonstrated by a multi-axis force-sensing module capable of independently resolving normal and shear forces. This work establishes a practical platform bridging vector magnetometry and tactile sensing for next-generation wearable and human-machine interface applications.
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- Publisher
- WILEY-V C H VERLAG GMBH
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