A crossbar network for silicon quantum dot qubits

Journal Article (2018)
Author(s)

Ruoyu Li (Kavli institute of nanoscience Delft, TU Delft - QCD/Veldhorst Lab, TU Delft - QuTech Advanced Research Centre)

Luca Petit (TU Delft - QCD/Veldhorst Lab, TU Delft - QuTech Advanced Research Centre, Kavli institute of nanoscience Delft)

David P. Franke (TU Delft - QuTech Advanced Research Centre, Kavli institute of nanoscience Delft, TU Delft - QCD/Veldhorst Lab)

Juan Pablo Dehollain (TU Delft - QCD/Vandersypen Lab, Kavli institute of nanoscience Delft, TU Delft - QuTech Advanced Research Centre)

Jonas Helsen (TU Delft - Quantum Information and Software, TU Delft - QuTech Advanced Research Centre)

Mark Steudtner (TU Delft - QuTech Advanced Research Centre, TU Delft - QID/Wehner Group, Universiteit Leiden)

Nicole K. Thomas (Intel Corporation)

Stephanie Wehner (TU Delft - QuTech Advanced Research Centre, TU Delft - Quantum Internet Division, TU Delft - Quantum Information and Software)

Lieven M.K. Vandersypen (Kavli institute of nanoscience Delft, TU Delft - QCD/Vandersypen Lab, Intel Corporation, TU Delft - QN/Vandersypen Lab, TU Delft - QuTech Advanced Research Centre)

Menno Veldhorst (TU Delft - QuTech Advanced Research Centre, Kavli institute of nanoscience Delft, TU Delft - QCD/Veldhorst Lab)

Research Group
QCD/Veldhorst Lab
DOI related publication
https://doi.org/10.1126/sciadv.aar3960
More Info
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Publication Year
2018
Language
English
Research Group
QCD/Veldhorst Lab
Journal title
Science Advances
Issue number
7
Volume number
4
Article number
eaar3960
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Abstract

The spin states of single electrons in gate-defined quantum dots satisfy crucial requirements for a practical quantum computer. These include extremely long coherence times, high-fidelity quantum operation, and the ability to shuttle electrons as a mechanism for on-chip flying qubits. To increase the number of qubits to the thousands or millions of qubits needed for practical quantum information, we present an architecture based on shared control and a scalable number of lines. Crucially, the control lines define the qubit grid, such that no local components are required. Our design enables qubit coupling beyond nearest neighbors, providing prospects for nonplanar quantum error correction protocols. Fabrication is based on a three-layer design to define qubit and tunnel barrier gates. We show that a double stripline on top of the structure can drive high-fidelity single-qubit rotations. Self-aligned inhomogeneous magnetic fields induced by direct currents through superconducting gates enable qubit addressability and readout. Qubit coupling is based on the exchange interaction, and we show that parallel two-qubit gates can be performed at the detuning-noise insensitive point. While the architecture requires a high level of uniformity in the materials and critical dimensions to enable shared control, it stands out for its simplicity and provides prospects for large-scale quantum computation in the near future.