Quantum simulation of a Fermi-Hubbard model using a semiconductor quantum dot array

Journal Article (2017)
Author(s)

T. Hensgens (TU Delft - QuTech Advanced Research Centre, Kavli institute of nanoscience Delft, TU Delft - QCD/Vandersypen Lab)

T. Fujita (TU Delft - QuTech Advanced Research Centre, Kavli institute of nanoscience Delft, TU Delft - QCD/Vandersypen Lab)

L. Janssen (Kavli institute of nanoscience Delft)

Xiao Li (University of Maryland)

C. J. Van Diepen (TU Delft - QCD/Vandersypen Lab, TNO)

C Reichl (ETH Zürich)

W Wegscheider (ETH Zürich)

S Das Sarma (University of Maryland)

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

Research Group
QCD/Vandersypen Lab
DOI related publication
https://doi.org/10.1038/nature23022 Final published version
More Info
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Publication Year
2017
Language
English
Research Group
QCD/Vandersypen Lab
Issue number
7665
Volume number
548
Pages (from-to)
70-73
Downloads counter
329
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Institutional Repository
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Abstract

Interacting fermions on a lattice can develop strong quantum correlations, which are the cause of the classical intractability of many exotic phases of matter. Current efforts are directed towards the control of artificial quantum systems that can be made to emulate the underlying Fermi-Hubbard models. Electrostatically confined conduction-band electrons define interacting quantum coherent spin and charge degrees of freedom that allow all-electrical initialization of low-entropy states and readily adhere to the Fermi-Hubbard Hamiltonian. Until now, however, the substantial electrostatic disorder of the solid state has meant that only a few attempts at emulating Fermi-Hubbard physics on solid-state platforms have been made. Here we show that for gate-defined quantum dots this disorder can be suppressed in a controlled manner. Using a semi-automated and scalable set of experimental tools, we homogeneously and independently set up the electron filling and nearest-neighbour tunnel coupling in a semiconductor quantum dot array so as to simulate a Fermi-Hubbard system. With this set-up, we realize a detailed characterization of the collective Coulomb blockade transition, which is the finite-size analogue of the interaction-driven Mott metal-to-insulator transition. As automation and device fabrication of semiconductor quantum dots continue to improve, the ideas presented here will enable the investigation of the physics of ever more complex many-body states using quantum dots.

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