Interface engineered perpendicular magnetic anisotropy-controlled propagation of magnetic domain

We report the impact of ferromagnetic layer thickness and stack configuration on the magnetic properties, perpendicular magnetic anisotropy (PMA), modified magnetization switching mechanisms, and creep regime domain wall (DW) dynamics, including their propagation velocity, in a Pt/CoFeB/Ru tri-layer system. An effective magnetic anisotropy Keff of (8.8 ± 0.15) × 105 erg/cm3 has been achieved without any post-annealing, highlighting the high-quality interface. The evaluation of PMA strength with ferromagnetic thickness and the number of stacks quantitatively reveals cumulative interfacial contributions that govern the overall magnetic anisotropy in the system. The deviation of the angular dependence of the magnetization switching field from the conventional Kondorsky model is well described using a phenomenological interpolation Kondorsky model, which signifies the role of field-induced domain-wall softening and pinning effects during the reversal process. Furthermore, polar-magneto optical Kerr effect microscopy imaging during the magnetization reversal process provides detailed insight into domain nucleation and the subsequent DW propagation driven by magnetic fields. The observations reveal well-defined, stable bubble magnetic domains that evolve coherently under the applied magnetic field. Our results demonstrate an effective approach for engineering interface-driven PMA and related magnetic phenomena in the heterostructures for next-generation low-power and DW-based spintronic devices.

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Publication Details

Journal
Applied Physics Letters
Published
2026-10-05
DOI
https://doi.org/10.1063/5.0342804
Primary Topic
Magnetic properties of thin films
Type
article
Field-Weighted Citation Impact
0.00

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article

Interface engineered perpendicular magnetic anisotropy-controlled propagation of magnetic domain

Mohd. S. Sabir, Rohit Medwal, Arun Singh Dev, Joseph Vimal Vas et al.
Applied Physics Letters
Magnetic properties of thin films
article

Interface engineered perpendicular magnetic anisotropy-controlled propagation of magnetic domain

Mohd. S. Sabir, Rohit Medwal, Arun Singh Dev, Joseph Vimal Vas, Arun Jacob Mathew, Yasuhiro Fukuma, Rakhul Raj, Varimalla Raghavendra Reddy, Md Rejaul Karim, Aman Agrahari
article en

Abstract

We report the impact of ferromagnetic layer thickness and stack configuration on the magnetic properties, perpendicular magnetic anisotropy (PMA), modified magnetization switching mechanisms, and creep regime domain wall (DW) dynamics, including their propagation velocity, in a Pt/CoFeB/Ru tri-layer system. An effective magnetic anisotropy Keff of (8.8 ± 0.15) × 105 erg/cm3 has been achieved without any post-annealing, highlighting the high-quality interface. The evaluation of PMA strength with ferromagnetic thickness and the number of stacks quantitatively reveals cumulative interfacial contributions that govern the overall magnetic anisotropy in the system. The deviation of the angular dependence of the magnetization switching field from the conventional Kondorsky model is well described using a phenomenological interpolation Kondorsky model, which signifies the role of field-induced domain-wall softening and pinning effects during the reversal process. Furthermore, polar-magneto optical Kerr effect microscopy imaging during the magnetization reversal process provides detailed insight into domain nucleation and the subsequent DW propagation driven by magnetic fields. The observations reveal well-defined, stable bubble magnetic domains that evolve coherently under the applied magnetic field. Our results demonstrate an effective approach for engineering interface-driven PMA and related magnetic phenomena in the heterostructures for next-generation low-power and DW-based spintronic devices.

Applied Physics LettersVol. 129(14)
University of Delhi (IN), Centre National de la Recherche Scientifique (FR), Amity University (IN), Kyushu Institute of Technology (JP), Commissariat à l'Énergie Atomique et aux Énergies Alternatives (FR), CEA Grenoble (FR), Amity University (AE), UGC DAE Consortium for Scientific Research (IN), Spintronique et Technologie des Composants (FR), St. Stephen’s Hospital (IN), Vellore Institute of Technology University (IN), Université Grenoble Alpes (FR), Indian Institute of Technology Kanpur (IN)
Indian Institute of Technology Kanpur, Indian Institute of Science Education and Research Pune, Japan Science and Technology Agency, Advanced Low Carbon Technology Research and Development Program
Openalex Percentile: Top 16%
Magnetic properties of thin films
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