Controlling the Magnetic Properties of LaMnO<sub>3</sub>/SrTiO<sub>3</sub> Heterostructures by Stoichiometry and Electronic Reconstruction: Atomic‐Scale Evidence
Mengsha Li, Chunhua Tang, Tula R. Paudel, Dongsheng Song, Weiming Lü, Kun Han, Zhen Huang, Shengwei Zeng 等 16 位
National University of Singapore University of Nebraska–Lincoln Harbin Institute of Technology University of Jinan
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Interface‐driven magnetic effects and phenomena associated with spin–orbit coupling and intrinsic symmetry breaking are of importance for fundamental physics and device applications. How interfaces affect the interplay between charge, spin, orbital, and lattice degrees of freedom is the key to boosting device performance. In LaMnO 3 /SrTiO 3 (LMO/STO) polar–nonpolar heterostructures, electronic reconstruction leads to an antiferromagnetic to ferromagnetic transition, making them viable for spin filter applications. The interfacial electronic structure plays a critical role in the understanding of the microscopic origins of the observed magnetic phase transition, from antiferromagnetic at 5 unit cells (ucs) of LMO or below to ferromagnetic at 6 ucs or above, yet such a study is missing. Here, an atomic scale understanding of LMO/STO ambipolar ferromagnetism is offered by quantifying the interface charge distribution and performing first‐principles density functional theory (DFT) calculations across this abrupt magnetic transition. It is found that the electronic reconstruction is confined within the first 3 ucs of LMO from the interface, and more importantly, it is robust against oxygen nonstoichiometry. When restoring stoichiometry, an enhanced ferromagnetic insulating state in LMO films with a thickness as thin as 2 nm (5 uc) is achieved, making LMO readily applicable as barriers in spin filters.
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材料 / 化学Magnetic and transport properties of perovskites and related materials
Electronic and Structural Properties of Oxides · Advanced Condensed Matter Physics
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