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arXiv · 2007.15400

Silicon quantum dot devices with a self-aligned second gate layer

Abstract

We implement silicon quantum dot devices with two layers of gate electrodes using a self-alignment technique, which allows for ultra-small gate lengths and intrinsically perfect layer-to-layer alignment. In a double quantum dot system, we investigate hole transport and observe current rectification due to Pauli spin blockade. Magnetic field measurements indicate that hole spin relaxation is dominated by spin-orbit interaction, and enable us to determine the effective hole $g$-factor $\simeq1.6$. From an avoided singlet-triplet crossing, occurring at high magnetic field, the spin-orbit coupling strength $\simeq0.27$meV is obtained, promising fast and all-electrical spin control.

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Simon Geyer, Leon C. Camenzind, Lukas Czornomaz, Veeresh Deshpande, Andreas Fuhrer, Richard J. Warburton, Dominik M. Zumbühl, Andreas V. Kuhlmann. 2020-07-30. Silicon quantum dot devices with a self-aligned second gate layer. https://doi.org/10.1063/5.0036520

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