Fast and Robust Geometric Two-Qubit Gates for Superconducting Qubits and Beyond
ORAL
Abstract
Quantum protocols based on adiabatic evolution are remarkably robust against imperfections of control pulses and system uncertainties. While adiabatic protocols have been successfully implemented for quantum operations such as quantum state transfer and single-qubit gates, their use for geometric two-qubit gates remains a challenge. In this talk, I will present a general scheme to realize robust geometric two-qubit gates in multi-level qubit systems where the interaction between the qubits is mediated by an auxiliary system (such as a bus or coupler). While our scheme utilizes Stimulated Raman Adiabatic Passage (STIRAP), it is substantially simpler than STIRAP-based gates that have been proposed for atomic platforms, requiring fewer control tones and ancillary states, as well as utilizing only a generic dispersive interaction. I will show how our gate can be accelerated using a shortcuts-to-adiabaticity approach, allowing one to achieve a gate that is both fast and relatively robust. I will present a comprehensive theoretical analysis of the performance of our two-qubit gate in a parametrically-modulated superconducting circuits comprising two fluxonium qubits coupled to an auxiliary system.
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Publication: F. Setiawan, Peter Groszkowski, and Aashish A. Clerk, Fast and Robust Geometric Two-Qubit Gates for Superconducting Qubits and Beyond, arXiv:2208.04249
Presenters
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Fnu Setiawan
University of Chicago; Riverlane Research, Inc., University of Chicago
Authors
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Fnu Setiawan
University of Chicago; Riverlane Research, Inc., University of Chicago
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Peter Groszkowski
Oak Ridge National Laboratory, University of Chicago; Oak Ridge National Laboratory
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Aashish A Clerk
University of Chicago