| Literature DB >> 28949659 |
Di Yi1,2, Charles L Flint1,3, Purnima P Balakrishnan1,4, Krishnamurthy Mahalingam5, Brittany Urwin5, Arturas Vailionis1, Alpha T N'Diaye6, Padraic Shafer6, Elke Arenholz6, Yongseong Choi7, Kevin H Stone8, Jiun-Haw Chu1,2,9, Brandon M Howe5, Jian Liu10, Ian R Fisher1,2,9, Yuri Suzuki1,2.
Abstract
Perpendicular magnetic anisotropy (PMA) plays a critical role in the development of spintronics, thereby demanding new strategies to control PMA. Here we demonstrate a conceptually new type of interface induced PMA that is controlled by oxygen octahedral rotation. In superlattices comprised of La_{1-x}Sr_{x}MnO_{3} and SrIrO_{3}, we find that all superlattices (0≤x≤1) exhibit ferromagnetism despite the fact that La_{1-x}Sr_{x}MnO_{3} is antiferromagnetic for x>0.5. PMA as high as 4×10^{6} erg/cm^{3} is observed by increasing x and attributed to a decrease of oxygen octahedral rotation at interfaces. We also demonstrate that oxygen octahedral deformation cannot explain the trend in PMA. These results reveal a new degree of freedom to control PMA, enabling discovery of emergent magnetic textures and topological phenomena.Entities:
Year: 2017 PMID: 28949659 DOI: 10.1103/PhysRevLett.119.077201
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161