Enhancing the performance of exchange-only qubits in triple-quantum-dots

ORAL

Abstract

The exchange-only qubit has several potential advantages for quantum computation: all-electrical control, fast gate operations, and robustness against global magnetic noise. Such a device has recently been implemented in a GaAs triple-quantum-dot. In this talk, we discuss theoretical simulations of the fidelity of pulsed gate operations of the exchange-only qubit, based on a master equation approach. Our model accounts for several different dephasing mechanisms, including hyperfine interactions and charge noise arising from double-occupation errors and fluctuations of the detuning parameter. Our investigations indicate the optimal working regimes and maximum gate fidelities for these devices, in terms of experimentally tunable parameters. This work was supported by the Army Research Office, the National Science Foundation, and the United States Department of Defense. The views and conclusions contained in this document are those of the authors and should not be interpreted as representing the official policies, either expressly or implied, of the US Government.

Authors

  • Jianjia Fei

    University of Wisconsin - Madison

  • Jo-Tzu Hung

    State Univ of NY - Buffalo, University at Buffalo, SUNY

  • Teck Seng Koh

    University of Wisconsin - Madison, University of Wisconsin

  • Yun-Pil Shim

    University of Wisconsin - Madison, Laboratory for Physical Sciences

  • Susan N. Coppersmith

    University of Wisconsin-Madison, University of Wisconsin - Madison, University of Wisconsin, University of Wisconsin, Madison

  • Xuedong Hu

    University at Buffalo, State Univ of NY - Buffalo, University at Buffalo, SUNY

  • Mark Friesen

    University of Wisconsin - Madison, University of Wisconsin