High coherence 2D Kerr-cat qubit: Experimental realization and technical challenges (2/2)

ORAL

Abstract

The Kerr-cat qubit is a bosonic qubit in which the information is encoded in multi-photon cat states. The suppressed bit flip rate makes this qubit a promising candidate to implement quantum error correction codes tailored for noise-biased qubits. Moreover, its intrinsic nonlinearities enable fast logic gates and QND measurement. However, the strong two-photon pump drive, which stabilizes the cat-state, introduces both theoretical and practical challenges when large cat sizes or multi-qubit operations are desired. Here, we present an experimental realization of high-coherence Kerr-cat qubits in a 2D superconducting circuit. With a novel on-chip filter significantly increasing the qubit-pump coupling, we can generate large cats with smaller drive power and explore the bit-flip dependence on the cat size. With bit-flip times approaching 800us for a cat of size 11 photon our work paves the way towards high-coherence and scalable multi-qubit devices.

The talk is divided into two parts. This is the second part, which will discuss the fabrication, measurement, and experiment results

* This work was supported by the U.S. Army Research Laboratory and the U.S. Army Research Office under contract/grant number W911NF-22-1-0258.

Presenters

  • Bingcheng Qing

    University of California, Berkeley

Authors

  • Bingcheng Qing

    University of California, Berkeley

  • AHMED HAJR

    University of California, Berkeley

  • Ke Wang

    University of California, Berkeley, UC Berkeley

  • Zahra Pedramrazi

    University of California, Berkeley

  • Long B Nguyen

    University of California, Berkeley, UC Berkeley

  • Irwin Huang

    University of Rochester

  • Bibek Bhandari

    Institute for Quantum Studies, Chapman University, Chapman University

  • Gerwin Koolstra

    University of California, Berkeley

  • David I Santiago

    Lawrence Berkeley National Laboratory

  • Justin G Dressel

    Chapman Univ, Chapman University

  • Andrew N Jordan

    University of Rochester, Chapman University

  • Irfan Siddiqi

    University of California, Berkeley