Hole-type superconducting gatemon qubit based on Ge/Si core/shell nanowires

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Abstract

We demonstrate that superconducting gatemon qubits based on superconductor-semiconductor-superconductor Josephson junctions can be constructed on hole-type Ge/Si core/shell nanowires. The frequency of the qubit can be set firstly by controlling the diffusion of Al in the nanowire via thermal annealing, which yields a suitable critical supercurrent allowing the qubit frequency to be within the experimentally accessible range, and then by fine tuning of a gate voltage, by which an accurate adjustment of the frequency can be realized. On the resulted qubit, Rabi oscillation with an energy relaxation time T1~180ns was observed in the time domain, an average decoherence time T2*~15ns was obtained, and the gate voltage dependence of both T1 and T2* was investigated. Such a hole-type superconducting gatemon qubit, based on materials with strong spin-orbit coupling and potentially the absence of hyperfine interaction after isotope purification, could be used for exploring the quantum coherence phenomena of hole-gas and even Majorana physics in Ge-based quantum devices.

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Zhuo, E., Lyu, Z., Sun, X., Li, A., Li, B., Ji, Z., … Lu, L. (2023). Hole-type superconducting gatemon qubit based on Ge/Si core/shell nanowires. Npj Quantum Information, 9(1). https://doi.org/10.1038/s41534-023-00721-9

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