Optimising multi-qubit operations in a ring-resonator-based quantum processor

ORAL

Abstract

A highly connected qubit network enables one to efficiently compile an arbitrary quantum operation by minimizing gate count. Recently, we showed that a highly connected superconducting qubit network could be achieved using a ring-resonator-based coupler [1].  However, in architectures with static coupling, many levels (including non-computational ones) in the extended Hilbert space may interact with each other and cause undesired shifts in the computational subspace, leading to coherent errors. Using the ring-resonator-based coupler architecture, we explore the optimization of device parameters for a given number of transmon qubits and connectivity, to achieve maximum processor performance. We also investigate the possibility of using optimal-control-techniques[2] that include the coherent errors in the system Hamiltonian to tune high-fidelity quantum operations in such connected networks consisting of five to ten qubits.

[1] Phys. Rev. Applied 16, 024018

[2] Phys Rev A.97.042348

*This work is supported by the Department of Atomic Energy of the Government of India under Project No. RTI4003. We also acknowledge support from the Department of Science and Technology, India, via the QuEST program

Presenters

  • Sumeru Hazra

    • Tata Inst of Fundamental Res

Authors

  • Sumeru Hazra

    • Tata Inst of Fundamental Res
  • Gautham Umasankar

    • Indian Institute of Technology Madras
  • Aakash V

    • Indian Institute of Technology Bombay
  • Kaushik Singirikonda

    • Indian Institute of Technology Bombay
  • Jay Deshmukh

    • Tata Inst of Fundamental Res
  • Sai Vinjanampathy

    • Indian Institute of Technology Bombay
  • Rajamani Vijayaraghavan

    • Tata Inst of Fundamental Res