Strain-Induced Domain Structure and Its Impact on Magnetic and Transport Properties of Gd0.6Ca0.4MnO3 Thin Films




Beiranvand Azar, Rivasto Elmeri, Huhtinen Hannu, Paturi Petriina

PublisherAMER CHEMICAL SOC

2021

ACS Omega

ACS OMEGA

ACS OMEGA

6

50

34572

34579

8

2470-1343

2470-1343

DOIhttps://doi.org/10.1021/acsomega.1c04904

https://pubs.acs.org/doi/10.1021/acsomega.1c04904

https://research.utu.fi/converis/portal/detail/Publication/68385885



The evolution of lattice strain on crystallographic domain structures and magnetic properties of epitaxial low-bandwidth manganite Gd0.6Ca0.4MnO3 (GCMO) films have been studied with films on different substrates: SrTiO3, (LaAlO3)0.3(Sr2AlTaO6)0.7, SrLaAlO3, and MgO. The X-ray diffraction data reveals that all of the films, except the films on MgO, are epitaxial and have an orthorhombic structure. Cross-sectional dependent microstructural defects. Large-enough tensile strain can increase oxygen vacancies concentration near the interface and can induce vacancies in the substrate. In addition, a second phase was observed in the films with tensile strain. However, compressive strain causes dislocations in the interface and a mosaic domain structure. On the other hand, the magnetic properties of the films, including saturation magnetization, coercive field, and transport property depend systematically on the substrate-induced strain. Based on these results, the choice of appropriate substrate is an important key to obtaining high-quality GCMO film, which can affect the functionality of potential device applications.


Last updated on 2024-26-11 at 23:22