Quantum Error Correction Assisted Axion Search in CMOS Spin Qubit Arrays
arXiv:2605.17457 · doi:10.1103/2y5c-x1kz
Abstract
Searches for axion and axionlike dark matter based on solid-state spin qubits are fundamentally limited by strong longitudinal dephasing, which rapidly suppresses the sensitivity gains offered by entanglement. Here we show that quantum error correction (QEC) can substantially enhance axion search sensitivity in realistic semiconductor spin qubit platforms by mitigating this dominant noise source. By integrating an optimally chosen repetition code QEC with logical GHZ block entanglement, we derive closed-form expressions for the quantum Fisher information that explicitly incorporate the finite coherence time of the axion field. Our analysis demonstrates that modest QEC cycle frequencies are sufficient to significantly reduce the effective dephasing rate, thereby restoring a broad parameter regime in which entanglement-enhanced sensing surpasses the standard quantum limit. Projecting these results onto CMOS-compatible device parameters, we find that QEC-protected entangled sensing can revive otherwise inaccessible quantum advantages, yielding up to order-of-magnitude improvements in sensitivity to the axion-electron coupling . These results establish a practical and theoretically controlled pathway for using QEC to improve qubit array searches for physics beyond the Standard Model.
References in corpus (56)
- Quantum sensing
- Surface codes: Towards practical large-scale quantum computation
- Quantum metrology
- Axion Cosmology
- Introduction to Quantum Noise, Measurement and Amplification
- Dark Matter Candidates from Particle Physics and Methods of Detection
- Silicon Quantum Electronics
- A >99.9%-fidelity quantum-dot spin qubit with coherence limited by charge noise
- The elusive Heisenberg limit in quantum enhanced metrology
- New experimental approaches in the search for axion-like particles
- Semiconductor Spin Qubits
- The landscape of QCD axion models
- Computing with spin qubits at the surface code error threshold
- Fast universal quantum control above the fault-tolerance threshold in silicon
- Axions as Dark Matter Particles
- Cosmic Axion Spin Precession Experiment (CASPEr)
- Dark matter and the early Universe: a review
- Quantum Error Correction for Metrology
- Increasing sensing resolution with error correction
- Recent Progress in the Physics of Axions and Axion-Like Particles
- Axion-induced effects in atoms, molecules and nuclei: Parity nonconservation, anapole moments, electric dipole moments, and spin-gravity and spin-axion momentum couplings
- Searching for Dark Matter with a Superconducting Qubit
- Search for axionlike dark matter with a liquid-state nuclear spin comagnetometer
- Axion search with a quantum-limited ferromagnetic haloscope
- Searching for galactic axions through magnetized media: the QUAX proposal
- The large-scale modulation of the density distribution in standard axionic CDM and its cosmological and physical impact
- Constraints on bosonic dark matter from ultralow-field nuclear magnetic resonance
- Measurement of Temporal Correlations of the Overhauser Field in a Double Quantum Dot
- Search for axion-like dark matter using solid-state nuclear magnetic resonance
- Direct Search for Dark Matter Axions Excluding ALP Cogenesis in the 63-67 micro-eV Range, with The ORGAN Experiment
- The Cosmic Axion Spin Precession Experiment (CASPEr): a dark-matter search with nuclear magnetic resonance
- Broadening Frequency Range of a Ferromagnetic Axion Haloscope with Strongly Coupled Cavity-Magnon Polaritons
- Simultaneous single-qubit driving of semiconductor spin qubits at the fault-tolerant threshold
- Axion Dark Matter Search around 4.55 eV with Dine-Fischler-Srednicki-Zhitnitskii Sensitivity
- Single-spin qubits in isotopically enriched silicon at low magnetic field
- Operation of a ferromagnetic axion haloscope at eV
- Detecting Light Boson Dark Matter through Conversion into Magnon
- Entangled sensor-networks for dark-matter searches
- Electrical control of the -tensor of a single hole in a silicon MOS quantum dot
- Hole spin driving by strain-induced spin-orbit interactions
- Constraining Ultralight Dark Matter through an Accelerated Resonant Search
- A 300 mm foundry silicon spin qubit unit cell exceeding 99% fidelity in all operations
- Axion search with quantum nondemolition detection of magnons
- On the Sensitivity of Spin-Precession Axion Experiments
- Quantum sensitivity limits of nuclear magnetic resonance experiments searching for new fundamental physics
- Spin-axion coupling
- Quantum Enhancement in Dark Matter Detection with Quantum Computation
- Modelling of spin decoherence in a Si hole qubit perturbed by a single charge fluctuator
- Physical Signatures of Fermion-Coupled Axion Dark Matter
- Coulomb-blockade and Pauli-blockade magnetometry
- Dephasing of planar Ge hole spin qubits due to 1/ charge noise
- Toward Axion Signal Extraction in Semiconductor Spin Qubits Via Spectral Engineering
- Annual-modulation fingerprint of the axion wind induced sideband triplet in quantum dot spin qubit sensors
- Broadband Dark Matter Axion Detection using a Cylindrical Capacitor
- Effects of Finite Material Size On Axion-magnon Conversion
- Cancelling second order frequency shifts in Ge hole spin qubits via bichromatic control