4.7 Article

Magnetic and Electronic Properties of Weyl Semimetal Co2MnGa Thin Films

期刊

NANOMATERIALS
卷 11, 期 1, 页码 -

出版社

MDPI
DOI: 10.3390/nano11010251

关键词

topological materials; magnetic Weyl semimetals; Heusler compounds; magnetic dichroism; photoelectron spectroscopy; ferromagnetic resonance; polarized neutron reflectivity; thin films; magnetic anisotropy

资金

  1. DFG through SFB 1143 [247310070]
  2. Wurzburg-Dresden Cluster of Excellence on Complexity and Topology in Quantum Matter-ct.qmat (EXC 2147) [39085490]
  3. European Union [824123]

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This study investigates the structural, magnetic, and electronic properties of magnetic Weyl semimetal thin films of Co2MnGa, revealing the impact of film thickness on structural and magnetic properties, and providing experimental insights into the electronic and magnetic properties of magnetic Weyl semimetal thin films.
Magnetic Weyl semimetals are newly discovered quantum materials with the potential for use in spintronic applications. Of particular interest is the cubic Heusler compound Co2MnGa due to its inherent magnetic and topological properties. This work presents the structural, magnetic and electronic properties of magnetron co-sputtered Co2MnGa thin films, with thicknesses ranging from 10 to 80 nm. Polarized neutron reflectometry confirmed a uniform magnetization through the films. Hard x-ray photoelectron spectroscopy revealed a high degree of spin polarization and localized (itinerant) character of the Mn d (Co d) valence electrons and accompanying magnetic moments. Further, broadband and field orientation-dependent ferromagnetic resonance measurements indicated a relation between the thickness-dependent structural and magnetic properties. The increase of the tensile strain-induced tetragonal distortion in the thinner films was reflected in an increase of the cubic anisotropy term and a decrease of the perpendicular uniaxial term. The lattice distortion led to a reduction of the Gilbert damping parameter and the thickness-dependent film quality affected the inhomogeneous linewidth broadening. These experimental findings will enrich the understanding of the electronic and magnetic properties of magnetic Weyl semimetal thin films.

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