Anisotropic Quantum Transport through a Single Spin Channel in the Magnetic Semiconductor EuTiO<sub>3</sub>.

Maruhashi, Kazuki; Takahashi, Kei S; Bahramy, Mohammad Saeed; Shimizu, Sunao; Kurihara, Ryosuke; Miyake, Atsushi; Tokunaga, Masashi; Tokura, Yoshinori et al. · Adv Mater · 2020

basic_science · Level V

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Abstract

Magnetic semiconductors are a vital component in the understanding of quantum transport phenomena. To explore such delicate, yet fundamentally important, effects, it is crucial to maintain a high carrier mobility in the presence of magnetic moments. In practice, however, magnetization often diminishes the carrier mobility. Here, it is shown that EuTiO<sub>3</sub> is a rare example of a magnetic semiconductor that can be desirably grown using the molecular beam epitaxy to possess a high carrier mobility exceeding 3000 cm<sup>2</sup> V<sup>-1</sup> s<sup>-1</sup> at 2 K, while intrinsically hosting a large magnetization value, 7 μ<sub>B</sub> per formula unit. This is demonstrated by measuring the Shubnikov-de Haas (SdH) oscillations in the ferromagnetic state of EuTiO<sub>3</sub> films with various carrier densities. Using first-principles calculations, it is shown that the observed SdH oscillations originate genuinely from Ti 3d-t<sub>2g</sub> states which are fully spin-polarized due to their energetical proximity to the in-gap Eu 4f bands. Such an exchange coupling is further shown to have a profound effect on the effective mass and fermiology of the Ti 3d-t<sub>2g</sub> electrons, manifested by a directional anisotropy in the SdH oscillations. These findings suggest that EuTiO<sub>3</sub> film is an ideal magnetic semiconductor, offering a fertile field to explore quantum phenomena suitable for spintronic applications.