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Tuning rotational magnetization for high frequency magnetoimpedance in micro-patterned triangle spiral magnetic systems

Title
Tuning rotational magnetization for high frequency magnetoimpedance in micro-patterned triangle spiral magnetic systems
Author(s)
Tam, Ho AnhVan Tuan, NguyenThi Ngoc, NguyenVan Lich, LeVan Hai, DinhPhan, Manh-HuongKim, Cheol GiLam, Vu DinhGiang, Do Thi Huong
Issued Date
2022-12
Citation
Journal of Science: Advanced Materials and Devices, v.7, no.4
Type
Article
Author Keywords
Magneto-impedanceMagnetic sensorMicro-coilsMagnetic domain
Keywords
GIANT MAGNETOIMPEDANCEIMPEDANCEFIELDWIREFILMFE
ISSN
2468-2284
Abstract
Achieving high sensitivity, resolution, and accuracy is desirable and in high demand for magnetic sensor applications. The giant magnetoimpedance (GMI) effect has drawn intensive attention owing to its ultrasensitive response to the magnetic field. Further enhancement of the GMI effect in soft magnetic conductors (wires, ribbons, or films) is essential but represents a big challenge since the experimentally reported highest GMI ratio is still much smaller than its theoretically predicted value. Inspired by the kirigami structures, we propose a new approach for improving the GMI effect by designing triangle spiral magnetic systems. We demonstrate that the GMI ratio can be easily tuned by varying the edge width of the triangle spiral magnetic ribbon. The GMI ratio is enhanced up to 250% and 100% for the Fe92.5C3.5Si3.9 ribbon with a 60 μm wide edge when a magnetic field of 100 Oe is aligned along the altitude and edge directions, respectively. Magnetometry indicates that upon reduction of the edge width, the improvement of magnetic susceptibility at low applied fields is correlated with the strengthened shape anisotropy. Micromagnetic simulations suggest that various closure magnetic domain configurations, such as stripe and zig-zag domain structures, can be formed, depending on the applied magnetic field directions, as a result of the competition of anisotropy and Zeeman energies followed in the Stoner–Wohlfarth model. The simulated results fully support the experimentally observed GMI enhancement and attribute it to the formation of transverse magnetic domains at the critical dimension of the micro-patterned magnetic ribbon system. These superior properties make the triangle-spiral GMI sensor a promising candidate for advanced sensor applications. © 2022 Vietnam National University, Hanoi
URI
http://hdl.handle.net/20.500.11750/17428
DOI
10.1016/j.jsamd.2022.100514
Publisher
Elsevier B.V.
Related Researcher
  • 김철기 Kim, CheolGi
  • Research Interests Magnetic Materials and Spintronics; Converging Technology of Nanomaterials and Biomaterials; Bio-NEMS;MEMS
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Department of Physics and Chemistry Lab for NanoBio-Materials & SpinTronics(nBEST) 1. Journal Articles

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