| Literature DB >> 27147407 |
K Han1,2, N Palina1,3, S W Zeng1,2, Z Huang1, C J Li1, W X Zhou1,2, D-Y Wan1,2, L C Zhang1,2, X Chi3, R Guo1,4, J S Chen4, T Venkatesan1,2,4,5,6, A Rusydi1,2,3.
Abstract
The observation of magnetic interaction at the interface between nonmagnetic oxides has attracted much attention in recent years. In this report, we show that the Kondo-like scattering at the SrTiO3-based conducting interface is enhanced by increasing the lattice mismatch and growth oxygen pressure PO2. For the 26-unit-cell LaAlO3/SrTiO3 (LAO/STO) interface with lattice mismatch being 3.0%, the Kondo-like scattering is observed when PO2 is beyond 1 mTorr. By contrast, when the lattice mismatch is reduced to 1.0% at the (La0.3Sr0.7)(Al0.65Ta0.35)O3/SrTiO3 (LSAT/STO) interface, the metallic state is always preserved up to PO2 of 100 mTorr. The data from Hall measurement and X-ray absorption near edge structure (XANES) spectroscopy reveal that the larger amount of localized Ti(3+) ions are formed at the LAO/STO interface compared to LSAT/STO. Those localized Ti(3+) ions with unpaired electrons can be spin-polarized to scatter mobile electrons, responsible for the Kondo-like scattering observed at the LAO/STO interface.Entities:
Year: 2016 PMID: 27147407 PMCID: PMC4857089 DOI: 10.1038/srep25455
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Temperature dependence of sheet resistance RS(T).
(a) Rs(T) curves for 26 uc LAO/STO with PO2 from 0.05–5 mTorr. (b) Rs(T) curves for 26 uc LAO/STO with PO2 from 0.05–100 mTorr. Inset: the schematic view of 2DEG exists at the LAO/STO (left) and LSAT/STO (right) interfaces with different lattice mismatch.
Figure 2Carrier density nS and carrier mobility μS.
(a) nS(T) and (b) μS(T) curves for 26 uc LAO/STO interface prepared with PO2 from 0.05–5 mTorr. (c) nS(T) and (d) μS(T) curves for 26 uc LSAT/STO interface prepared with PO2 from 0.05–5 mTorr. (e) μS as a function of PO2 for both interfaces. The blue and orange lines are guides to the eye, representing LSAT/STO and LAO/STO interfaces, respectively.
Figure 3PO2-dependent MR with field perpendicular to the 2DEG plane at 2 K.
The MR curves for (a) LAO/STO and (b) LSAT/STO interfaces with different PO2. The inset shows the applied magnetic field H perpendicular to the 2DEG plane.
Figure 4The AMR behavior for both interfaces with different PO2.
The MR curves with different θ at 2 K for (a) LAO/STO and (b) LSAT/STO interfaces with PO2 = 5 mTorr. The angle θ lies between the magnetic field and the normal of the interface, as shown in the inset of Fig. 4(a). (c) The AMR curves for both interfaces with PO2 = 0.05 and 5 mTorr.
Figure 5The X-ray absorption near edge structure (XANES) and possible 2DEG location with respect to localized Ti3+ ions.
(a) XANES for t-STO and Ti2O3 for reference (top), 10 uc LSAT/STO and LAO/STO interface with PO2 = 5 mTorr (middle), and residual values of both interfaces after being fitted by linear combination between t-STO and Ti2O3 (bottom). The red dashed lines indicate the peak positions for Ti3+. (b) The spatially-separated localized Ti3+ ions and mobile 2DEG at the metallic interface, where the spin scattering from the localized Ti3+ is weak. (c) The localized Ti3+ ions overlap the mobile 2DEG, resulting in the strong spin scattering and Kondo-like interface.