Relaxation times do not capture logical qubit dynamics
arXiv:2012.07911 · doi:10.22331/q-2022-01-24-632
Abstract
Quantum error correction procedures have the potential to enable faithful operation of large-scale quantum computers. They protect information from environmental decoherence by storing it in logical qubits, built from ensembles of entangled physical qubits according to suitably tailored quantum error correcting encodings. To date, no generally accepted framework to characterise the behaviour of logical qubits as quantum memories has been developed. In this work, we show that generalisations of well-established figures of merit of physical qubits, such as relaxation times, to logical qubits fail and do not capture dynamics of logical qubits. We experimentally illustrate that, in particular, spatial noise correlations can give rise to rich and counter-intuitive dynamical behavior of logical qubits. We show that a suitable set of observables, formed by code space population and logical operators within the code space, allows one to track and characterize the dynamical behaviour of logical qubits. Awareness of these effects and the efficient characterisation tools used in this work will help to guide and benchmark experimental implementations of logical qubits.
15 pages, 6 figures
References in corpus (12)
- Quantum Computing in the NISQ era and beyond
- Quantum Computing
- Quantum Non-Markovianity: Characterization, Quantification and Detection
- Experimental Quantum State Tomography of Optical Fields and Ultrafast Statistical Sampling
- Direct Fidelity Estimation from Few Pauli Measurements
- Experimental Quantum Computations on a Topologically Encoded Qubit
- Repeated Quantum Error Detection in a Surface Code
- Quantum Error Correction
- Decoherence by Correlated Noise and Quantum Error Correction
- Surface Code Threshold in the Presence of Correlated Errors
- Experimental quantification of spatial correlations in quantum dynamics
- Correlated errors can lead to better performance of quantum codes