Overcoming leakage in scalable quantum error correction
arXiv:2211.04728 · doi:10.1038/s41567-023-02226-w
Abstract
Leakage of quantum information out of computational states into higher energy states represents a major challenge in the pursuit of quantum error correction (QEC). In a QEC circuit, leakage builds over time and spreads through multi-qubit interactions. This leads to correlated errors that degrade the exponential suppression of logical error with scale, challenging the feasibility of QEC as a path towards fault-tolerant quantum computation. Here, we demonstrate the execution of a distance-3 surface code and distance-21 bit-flip code on a Sycamore quantum processor where leakage is removed from all qubits in each cycle. This shortens the lifetime of leakage and curtails its ability to spread and induce correlated errors. We report a ten-fold reduction in steady-state leakage population on the data qubits encoding the logical state and an average leakage population of less than throughout the entire device. The leakage removal process itself efficiently returns leakage population back to the computational basis, and adding it to a code circuit prevents leakage from inducing correlated error across cycles, restoring a fundamental assumption of QEC. With this demonstration that leakage can be contained, we resolve a key challenge for practical QEC at scale.
Main text: 7 pages, 5 figures
References in corpus (10)
- Charge insensitive qubit design derived from the Cooper pair box
- Surface codes: Towards practical large-scale quantum computation
- Suppressing quantum errors by scaling a surface code logical qubit
- Simple pulses for elimination of leakage in weakly nonlinear qubits
- Detecting arbitrary quantum errors via stabilizer measurements on a sublattice of the surface code
- Fast Reset and Suppressing Spontaneous Emission of a Superconducting Qubit
- Detecting bit-flip errors in a logical qubit using stabilizer measurements
- Demonstrating a Driven Reset Protocol of a Superconducting Qubit
- Removing leakage-induced correlated errors in superconducting quantum error correction
- A leakage-resilient approach to fault-tolerant quantum computing with superconducting elements
Cited by in corpus (51)
- Quantum error correction below the surface code threshold
- Hardware-efficient quantum error correction via concatenated bosonic qubits
- Stable Quantum-Correlated Many Body States through Engineered Dissipation
- Learning to Decode the Surface Code with a Recurrent, Transformer-Based Neural Network
- High-coherence superconducting qubits made using industry-standard, advanced semiconductor manufacturing
- Optimizing quantum gates towards the scale of logical qubits
- Systematic study of High transmon qudits up to
- Fast Flux-Activated Leakage Reduction for Superconducting Quantum Circuits
- Benchmarking the readout of a superconducting qubit for repeated measurements
- Circuit-based leakage-to-erasure conversion in a neutral atom quantum processor
- Demonstration of low-overhead quantum error correction codes
- Coupler-Assisted Leakage Reduction for Scalable Quantum Error Correction with Superconducting Qubits
- Experimental error suppression in Cross-Resonance gates via multi-derivative pulse shaping
- Neural network decoder for near-term surface-code experiments
- Efficient Detection of Strong-To-Weak Spontaneous Symmetry Breaking via the Rényi-1 Correlator
- Fault-tolerant quantum architectures based on erasure qubits
- Optimization of decoder priors for accurate quantum error correction
- Leveraging Qubit Loss Detection in Fault Tolerant Quantum Algorithms
- Local Clustering Decoder as a fast and adaptive hardware decoder for the surface code
- Harnessing two-photon dissipation for enhanced quantum measurement and control
- Multi-Purpose Architecture for Fast Reset and Protective Readout of Superconducting Qubits
- Active Leakage Cancellation in Single Qubit Gates
- Designing fast quantum gates using optimal control with a reinforcement-learning ansatz
- Hybrid cat-transmon architecture for scalable, hardware-efficient quantum error correction
- Detrimental non-Markovian errors for surface code memory
- Superconducting Quantum Simulation for Many-Body Physics beyond Equilibrium
- Parametric multi-element coupling architecture for coherent and dissipative control of superconducting qubits
- Quantum Circuit Discovery for Fault-Tolerant Logical State Preparation with Reinforcement Learning
- Accommodating Fabrication Defects on Floquet Codes with Minimal Hardware Requirements
- Quantum error detection in qubit-resonator star architecture
- Balanced cross-Kerr coupling for superconducting qubit readout
- Simulation of open quantum systems on universal quantum computers
- Resource-Efficient Cross-Platform Verification with Modular Superconducting Devices
- Above 99.9% Fidelity Single-Qubit Gates, Two-Qubit Gates, and Readout in a Single Superconducting Quantum Device
- Fast microwave-driven two-qubit gates between fluxonium qubits with a transmon coupler
- Fundamental thresholds for computational and erasure errors via the coherent information
- Multimode Purcell Filter for Superconducting-Qubit Reset and Readout with Intrinsic Purcell Protection
- Optimal number of stabilizer measurement rounds in an idling surface code patch
- Heralded High-Dimensional Photon-Photon Quantum Gate
- Sparse Non-Markovian Noise Modeling of Transmon-Based Multi-Qubit Operations
- Leakage Mobility in Superconducting Qubits as a Leakage Reduction Unit
- Accurate Leakage Speculation for Quantum Error Correction
- Feedforward suppression of readout-induced faults in quantum error correction
- Incoherent Approximation of Leakage in Quantum Error Correction
- Transversal AND in Quantum Codes
- Mitigating errors in state preparation and measurement with noncomputational states
- Logical operations with a dynamical qubit in Floquet-Bacon-Shor code
- Passive leakage removal unit based on a disordered transmon array
- Soft information decoding with superconducting qubits
- Quantum-optical reset with classical memory
- Quantum Assemblage Tomography