Realization of a quantum error detection code with a dynamically reassigned ancillary qubit
Abstract
Quantum error correction (QEC) is essential for achieving fault-tolerant quantum computing. While superconducting qubits are among the most promising candidates for scalable QEC, their limited nearest-neighbor connectivity presents significant challenges for implementing a wide range of error correction codes. In this work, we experimentally demonstrate a quantum error detection scheme that employs a dynamically reassigned ancillary qubit on a chain of three linearly connected transmon qubits. We show that this scheme appears capable of achieving performance comparable to conventional static-ancilla circuits. Additionally, the approach facilitates efficient quantum state preparation, which we demonstrate with tomography of arbitrary logical states. Our results provide experimental evidence for a flexible strategy that could be used for implementing QEC codes under connectivity constraints and highlight a possible path toward scalable quantum architectures.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (8)
Alena S. Kazmina
Russian Quantum Center 1 , Skolkovo, Moscow 121205,
Artyom M. Polyanskiy
Russian Quantum Center 1 , Skolkovo, Moscow 121205,
Elena Yu. Egorova
Russian Quantum Center 1 , Skolkovo, Moscow 121205,
Nikolay N. Abramov
National University of Science and Technology MISIS 2 , Moscow 119049,
Daria A. Kalacheva
Moscow Institute of Physics and Technology 3 , Dolgoprudny 141700,
Viktor B. Lubsanov
Moscow Institute of Physics and Technology 3 , Dolgoprudny 141700,
Aleksey N. Bolgar
Moscow Institute of Physics and Technology 3 , Dolgoprudny 141700,
Ilya A. Simakov
Russian Quantum Center 1 , Skolkovo, Moscow 121205,