Metallic and Insulating Oxide Interfaces Controlled by Electronic Correlations

The formation of two-dimensional electron gases (2DEGs) at complex oxide interfaces is directly influenced by the oxide electronic properties. We investigated how local electron correlations control the 2DEG by inserting a single atomic layer of a rare-earth oxide (RO) [(R is lanthanum (La), praseod...

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Veröffentlicht in:Science 2011-02, Vol.331 (6019), p.886-889
Hauptverfasser: Jang, H.W, Felker, D.A, Bark, C.W, Wang, Y, Niranjan, M.K, Nelson, C.T, Zhang, Y, Su, D, Folkman, C.M, Baek, S.H, Lee, S, Janicka, K, Zhu, Y, Pan, X.Q, Fong, D.D, Tsymbal, E.Y, Rzchowski, M.S, Eom, C.B
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Sprache:eng
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Zusammenfassung:The formation of two-dimensional electron gases (2DEGs) at complex oxide interfaces is directly influenced by the oxide electronic properties. We investigated how local electron correlations control the 2DEG by inserting a single atomic layer of a rare-earth oxide (RO) [(R is lanthanum (La), praseodymium (Pr), neodymium (Nd), samarium (Sm), or yttrium (Y)] into an epitaxial strontium titanate oxide (SrTiO₃) matrix using pulsed-laser deposition with atomic layer control. We find that structures with La, Pr, and Nd ions result in conducting 2DEGs at the inserted layer, whereas the structures with Sm or Y ions are insulating. Our local spectroscopic and theoretical results indicate that the interfacial conductivity is dependent on electronic correlations that decay spatially into the SrTiO₃ matrix. Such correlation effects can lead to new functionalities in designed heterostructures.
ISSN:0036-8075
1095-9203
DOI:10.1126/science.1198781