AI Article Synopsis

  • Spintronic devices benefit from reduced switching current density by lowering the damping constant and saturation magnetization while maintaining strong magnetic characteristics.
  • The study reports successful creation of tetragonal 0 Mn Ga thin films with reduced saturation magnetization through specific substrate conditions, demonstrating improved quality and properties with less lattice mismatch.
  • The findings reveal that fewer Mn II atoms and higher Mn ion populations contribute to lower saturation magnetization, highlighting the potential for enhanced spintronic applications.

Article Abstract

The key of spintronic devices using the spin-transfer torque phenomenon is the effective reduction of switching current density by lowering the damping constant and the saturation magnetization while retaining strong perpendicular magnetic anisotropy. To reduce the saturation magnetization, particular conditions such as specific substitutions or buffer layers are required. Herein, we demonstrate highly reduced saturation magnetization in tetragonal 0 Mn Ga thin films prepared by rf magnetron sputtering, where the epitaxial growth is examined on various substrates without any buffer layer. As the lattice mismatch between the sample and the substrate decreases from LaAlO and (LaAlO)(SrAlTaO) to SrTiO, the quality of Mn Ga films is improved together with the magnetic and electronic properties. Especially, the Mn Ga thin film epitaxially grown on the SrTiO substrate, fully oriented along the axis perpendicular to the film plane, exhibits significantly reduced saturation magnetization as low as 0.06 μ, compared to previous results. By the structural and chemical analyses, we find that the predominant removal of Mn II atoms and the large population of Mn ions affect the reduced saturation magnetization. Our findings provide insights into the magnetic properties of Mn Ga crystals, which promise great potential for spin-related device applications.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6788061PMC
http://dx.doi.org/10.1021/acsomega.9b02369DOI Listing

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