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Dynamically generated decoherence-free subspaces and subsystems on superconducting qubits.
Quiroz, Gregory; Pokharel, Bibek; Boen, Joseph; Tewala, Lina; Tripathi, Vinay; Williams, Devon; Wu, Lian-Ao; Titum, Paraj; Schultz, Kevin; Lidar, Daniel.
  • Quiroz G; Johns Hopkins University Applied Physics Laboratory, Laurel, MD 20723, United States of America.
  • Pokharel B; William H. Miller III Department of Physics & Astronomy, Johns Hopkins University, Baltimore, MD 21218, United States of America.
  • Boen J; Department of Physics and Astronomy, University of Southern California, Los Angeles, CA 90089, United States of America.
  • Tewala L; Center for Quantum Information Science & Technology, University of Southern California, Los Angeles, CA 90089, United States of America.
  • Tripathi V; Johns Hopkins University Applied Physics Laboratory, Laurel, MD 20723, United States of America.
  • Williams D; Johns Hopkins University Applied Physics Laboratory, Laurel, MD 20723, United States of America.
  • Wu LA; Thomas C. Jenkins Department of Biophysics, Johns Hopkins University, Baltimore, MD 21218, United States of America.
  • Titum P; Department of Physics and Astronomy, University of Southern California, Los Angeles, CA 90089, United States of America.
  • Schultz K; Center for Quantum Information Science & Technology, University of Southern California, Los Angeles, CA 90089, United States of America.
  • Lidar D; Johns Hopkins University Applied Physics Laboratory, Laurel, MD 20723, United States of America.
Rep Prog Phys ; 87(9)2024 Aug 14.
Article en En | MEDLINE | ID: mdl-39059436
ABSTRACT
Decoherence-free subspaces and subsystems (DFS) preserve quantum information by encoding it into symmetry-protected states unaffected by decoherence. An inherent DFS of a given experimental system may not exist; however, through the use of dynamical decoupling (DD), one can induce symmetries that support DFSs. Here, we provide the first experimental demonstration of DD-generated decoherence-free subsystem logical qubits. Utilizing IBM Quantum superconducting processors, we investigate two and three-qubit DFS codes comprising up to six and seven noninteracting logical qubits, respectively. Through a combination of DD and error detection, we show that DFS logical qubits can achieve up to a 23% improvement in state preservation fidelity over physical qubits subject to DD alone. This constitutes a beyond-breakeven fidelity improvement for DFS-encoded qubits. Our results showcase the potential utility of DFS codes as a pathway toward enhanced computational accuracy via logical encoding on quantum processors.
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Texto completo: 1 Banco de datos: MEDLINE Idioma: En Año: 2024 Tipo del documento: Article

Texto completo: 1 Banco de datos: MEDLINE Idioma: En Año: 2024 Tipo del documento: Article