Coherent transfer of quantum information in a silicon double quantum dot using resonant SWAP gates

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Abstract

Spin-based quantum processors in silicon quantum dots offer high-fidelity single and two-qubit operation. Recently multi-qubit devices have been realized; however, many-qubit demonstrations remain elusive, partly due to the limited qubit-to-qubit connectivity. These problems can be overcome by using SWAP gates, which are challenging to implement in devices having large magnetic field gradients. Here we use a primitive SWAP gate to transfer spin eigenstates in 100 ns with a fidelity of F¯SWAP(p)=98%. By swapping eigenstates we are able to demonstrate a technique for reading out and initializing the state of a double quantum dot without shuttling charges through the quantum dot. We then show that the SWAP gate can transfer arbitrary two-qubit product states in 300 ns with a fidelity of F¯SWAP(c)=84%. This work sets the stage for many-qubit experiments in silicon quantum dots.

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Sigillito, A. J., Gullans, M. J., Edge, L. F., Borselli, M., & Petta, J. R. (2019). Coherent transfer of quantum information in a silicon double quantum dot using resonant SWAP gates. Npj Quantum Information, 5(1). https://doi.org/10.1038/s41534-019-0225-0

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