Quantum control of a cat-qubit with bit-flip times exceeding ten seconds
arXiv:2307.06617 · doi:10.1038/s41586-024-07294-3
Abstract
Quantum bits (qubits) are prone to several types of errors due to uncontrolled interactions with their environment. Common strategies to correct these errors are based on architectures of qubits involving daunting hardware overheads. A hopeful path forward is to build qubits that are inherently protected against certain types of errors, so that the overhead required to correct remaining ones is significantly reduced. However, the foreseen benefit rests on a severe condition: quantum manipulations of the qubit must not break the protection that has been so carefully engineered. A recent qubit - the cat-qubit - is encoded in the manifold of metastable states of a quantum dynamical system, thereby acquiring continuous and autonomous protection against bit-flips. Here, in a superconducting circuit experiment, we implement a cat-qubit with bit-flip times exceeding 10 seconds. This is a four order of magnitude improvement over previous cat-qubit implementations. We prepare and image quantum superposition states, and measure phase-flip times above 490 nanoseconds. Most importantly, we control the phase of these quantum superpositions without breaking bit-flip protection. This experiment demonstrates the compatibility of quantum control and inherent bit-flip protection at an unprecedented level, showing the viability of these dynamical qubits for future quantum technologies.
References in corpus (8)
- Surface codes: Towards practical large-scale quantum computation
- Suppressing quantum errors by scaling a surface code logical qubit
- Confining the state of light to a quantum manifold by engineered two-photon loss
- Fault-tolerant quantum computation against biased noise
- One hundred second bit-flip time in a two-photon dissipative oscillator
- Autoparametric resonance extending the bit-flip time of a cat qubit up to 0.3 s
- Designing High-Fidelity Zeno Gates for Dissipative Cat Qubits
- Quantum bath engineering of a high impedance microwave mode through quasiparticle tunneling
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- Criticality-Enhanced Quantum Sensing with a Parametric Superconducting Resonator
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- LDPC-cat codes for low-overhead quantum computing in 2D
- High-Coherence Kerr-cat qubit in 2D architecture
- Entangling Schrödinger's cat states by bridging discrete- and continuous-variable encoding
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- Optimal Zeno Dragging for Quantum Control: A Shortcut to Zeno with Action-based Scheduling Optimization
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- Symmetrically Threaded Superconducting Quantum Interference Devices As Next Generation Kerr-cat Qubits
- Hybrid cat-transmon architecture for scalable, hardware-efficient quantum error correction
- Preserving phase coherence and linearity in cat qubits with exponential bit-flip suppression
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- Demonstration of a Tunable Non-Hermitian Nonlinear Microwave Dimer
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- Engineering the Nonlinearity of Bosonic Modes with a Multi-loop SQUID
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- Quantum-Enhanced Dark Matter Search Using Cat States
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- Theory of quasiparticle-induced errors in driven-dissipative Schrödinger cat qubits
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- In-situ tunable interaction with an invertible sign between a fluxonium and a post cavity
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- Convergence of bipartite open quantum systems stabilized by reservoir engineering
- Classical simulation of circuits with realistic odd-dimensional Gottesman-Kitaev-Preskill states
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- Andreev spin qubit protected by Franck-Condon blockade
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- Unfolded distillation: very low-cost magic state preparation for biased-noise qubits
- Kicked fluxonium with quantum strange attractor
- Review of Superconducting Qubit Devices and Their Large-Scale Integration
- Coherent pair injection as a route towards the enhancement of supersolid order in many-body bosonic models
- Environment-Assisted Generation of Non-Gaussian Wavepacket Quantum States
- Decoder Dependence in Surface-Code Threshold Estimation under Digitized Hybrid Continuous-Variable and Discrete Noise
- Chaos and quantum regimes in -photon driven, dissipative bosonic chains
- Passive quantum error correction of photon loss at breakeven
- Non-perturbative switching rates in bistable open quantum systems: from driven Kerr oscillators to dissipative cat qubits