| Literature DB >> 26641020 |
D Stornaiuolo1,2, C Cantoni3, G M De Luca1,2, R Di Capua1,2, E Di Gennaro1,2, G Ghiringhelli4, B Jouault5, D Marrè6, D Massarotti1,2, F Miletto Granozio2, I Pallecchi6, C Piamonteze7, S Rusponi8, F Tafuri2,9, M Salluzzo2.
Abstract
Advances in growth technology of oxide materials allow single atomic layer control of heterostructures. In particular delta doping, a key materials' engineering tool in today's semiconductor technology, is now also available for oxides. Here we show that a fully electric-field-tunable spin-polarized and superconducting quasi-2D electron system (q2DES) can be artificially created by inserting a few unit cells of delta doping EuTiO3 at the interface between LaAlO3 and SrTiO3 oxides. Spin polarization emerges below the ferromagnetic transition temperature of the EuTiO3 layer (TFM = 6-8 K) and is due to the exchange interaction between the magnetic moments of Eu-4f and of Ti-3d electrons. Moreover, in a large region of the phase diagram, superconductivity sets in from a ferromagnetic normal state. The occurrence of magnetic interactions, superconductivity and spin-orbit coupling in the same q2DES makes the LaAlO3/EuTiO3/SrTiO3 system an intriguing platform for the emergence of novel quantum phases in low-dimensional materials.Entities:
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Year: 2015 PMID: 26641020 DOI: 10.1038/nmat4491
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841