Integration of the Ferromagnetic Insulator EuO onto Graphene
arXiv:1302.5751 · doi:10.1021/nn303771f
Abstract
We have demonstrated the deposition of EuO films on graphene by reactive molecular beam epitaxy in a special adsorption-controlled and oxygen-limited regime, which is a critical advance toward the realization of the exchange proximity interaction (EPI). It has been predicted that when the ferromagnetic insulator (FMI) EuO is brought into contact with graphene, an overlap of electronic wavefunctions at the FMI/graphene interface can induce a large spin splitting inside the graphene. Experimental realization of this effect could lead to new routes for spin manipulation, which is a necessary requirement for a functional spin transistor. Furthermore, EPI could lead to novel spintronic behavior such as controllable magnetoresistance, gate tunable exchange bias, and quantized anomalous Hall effect. However, experimentally, EuO has not yet been integrated onto graphene. Here we report the successful growth of high quality crystalline EuO on highly-oriented pyrolytic graphite (HOPG) and single-layer graphene. The epitaxial EuO layers have (001) orientation and do not induce an observable D peak (defect) in the Raman spectra. Magneto-optic measurements indicate ferromagnetism with Curie temperature of 69 K, which is the value for bulk EuO. Transport measurements on exfoliated graphene before and after EuO deposition indicate only a slight decrease in mobility.
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- Graphene nanoflakes in external electric and magnetic in-plane fields
- Topological phases in gated bilayer graphene: Effects of Rashba spin-orbit coupling and exchange field
- Spin filter and spin valve in ferromagnetic graphene
- Giant magnetoresistance and anomalous transport in phosphorene-based multilayers with noncollinear magnetization
- Valley- and spin-filter in monolayer MoS
- Spin-selectable, region-tunable negative differential resistance in graphene double ferromagnetic barriers
- Controllable Spin-Charge Transport in Strained Graphene Nanoribbon Devices
- Spin-polarized electric current in silicene nanoribbons induced by atomic adsorption
- Electric-field-induced extremely large change in resistance in graphene ferromagnets
- Growth of EuO single crystals at reduced temperatures
- Spin-Valley Beam Splitter in Graphene