4.7 Article

Distinguishing Local Demagnetization Contribution to the Magnetization Process in Multisegmented Nanowires

Journal

NANOMATERIALS
Volume 12, Issue 12, Pages -

Publisher

MDPI
DOI: 10.3390/nano12121968

Keywords

magnetic nanowires; magnetization reversal processes; magnetoresistance; magnetic force microscopy

Funding

  1. Spanish Ministry of Innovation and Science [PID2019-108075RB-C31]
  2. Regional Government of Madrid [P2018/NMT-4321 NANOMAGCOST]
  3. Spanish Ministries of Science, Innovation and Universities through FPU Program [FPU18/01738]
  4. Alexander von Humboldt Foundation
  5. U.K. government department for Business, Energy, and Industrial Strategy through NMS funding (low-loss electronics)
  6. U.K. national Quantum Technologies program

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Cylindrical magnetic nanowires have potential applications and their magnetic properties can be tuned by selecting the composition and morphology. This study investigates the magnetization reversal process in multisegmented CoNi/Cu nanowires and reveals that the reversal occurs through multistep switching rather than a single Barkhausen jump. The stochasticity of the magnetization reversal is also analyzed.
Cylindrical magnetic nanowires are promising materials that have the potential to be used in a wide range of applications. The versatility of these nanostructures is based on the tunability of their magnetic properties, which is achieved by appropriately selecting their composition and morphology. In addition, stochastic behavior has attracted attention in the development of neuromorphic devices relying on probabilistic magnetization switching. Here, we present a study of the magnetization reversal process in multisegmented CoNi/Cu nanowires. Nonstandard 2D magnetic maps, recorded under an in-plane magnetic field, produce datasets that correlate with magnetoresistance measurements and micromagnetic simulations. From this process, the contribution of the individual segments to the demagnetization process can be distinguished. The results show that the magnetization reversal in these nanowires does not occur through a single Barkhausen jump, but rather by multistep switching, as individual CoNi segments in the NW undergo a magnetization reversal. The existence of vortex states is confirmed by their footprint in the magnetoresistance and 2D MFM maps. In addition, the stochasticity of the magnetization reversal is analysed. On the one hand, we observe different switching fields among the segments due to a slight variation in geometrical parameters or magnetic anisotropy. On the other hand, the stochasticity is observed in a series of repetitions of the magnetization reversal processes for the same NW under the same conditions.

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