Large tunable valley splitting in edge-free graphene quantum dots on boron nitride

被引:0
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作者
Nils M. Freitag
Tobias Reisch
Larisa A. Chizhova
Péter Nemes-Incze
Christian Holl
Colin R. Woods
Roman V. Gorbachev
Yang Cao
Andre K. Geim
Kostya S. Novoselov
Joachim Burgdörfer
Florian Libisch
Markus Morgenstern
机构
[1] RWTH Aachen University,II. Institute of Physics B, JARA
[2] TU Wien,FIT
[3] Centre for Energy Research,Institute for Theoretical Physics
[4] Institute of Technical Physics and Materials Science,School of Physics & Astronomy
[5] University of Manchester,undefined
来源
Nature Nanotechnology | 2018年 / 13卷
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摘要
Coherent manipulation of the binary degrees of freedom is at the heart of modern quantum technologies. Graphene offers two binary degrees: the electron spin and the valley. Efficient spin control has been demonstrated in many solid-state systems, whereas exploitation of the valley has only recently been started, albeit without control at the single-electron level. Here, we show that van der Waals stacking of graphene onto hexagonal boron nitride offers a natural platform for valley control. We use a graphene quantum dot induced by the tip of a scanning tunnelling microscope and demonstrate valley splitting that is tunable from −5 to +10 meV (including valley inversion) by sub-10-nm displacements of the quantum dot position. This boosts the range of controlled valley splitting by about one order of magnitude. The tunable inversion of spin and valley states should enable coherent superposition of these degrees of freedom as a first step towards graphene-based qubits.
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页码:392 / 397
页数:5
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