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State-conditional coherent charge qubit oscillations in a Si/SiGe quadruple quantum dot

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arxiv 1604.07956 v1 pith:4ZWYT5HA submitted 2016-04-27 cond-mat.mes-hall

State-conditional coherent charge qubit oscillations in a Si/SiGe quadruple quantum dot

classification cond-mat.mes-hall
keywords quantumqubitchargedoublecoherentgatessigecapacitive
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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abstract

Universal quantum computation requires high fidelity single qubit rotations and controlled two qubit gates. Along with high fidelity single qubit gates, strong efforts have been made in developing robust two qubit logic gates in electrically-gated quantum dot systems to realize a compact and nano-fabrication-compatible architecture. Here, we perform measurements of state-conditional coherent oscillations of a charge qubit. Using a quadruple quantum dot formed in a Si/SiGe heterostructure, we show the first demonstration of coherent two-axis control of a double quantum dot charge qubit in undoped Si/SiGe, performing Larmor and Ramsey oscillation measurements. We extract the strength of the capacitive coupling between double quantum dots by measuring the detuning energy shift ($\approx$ 75 $\mu$eV) of one double dot depending on the excess charge configuration of the other double dot. We further demonstrate that the strong capacitive coupling allows fast conditional Landau-Zener-Stuckelberg interferences with conditonal $\pi$ phase flip time about 80 ps, showing promising pathways toward multi-qubit entanglement control in semiconductor quantum dots.

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