Extending the coherence of spin defects in hBN enables advanced qubit control and quantum sensing.
Roberto RizzatoMartin SchalkStephan MohrJens C HermannJoachim P LeiboldFleming BruckmaierGiovanna SalvittiChenjiang QianPeirui JiGeorgy V AstakhovUlrich KentschManfred HelmAndreas V StierJonathan J FinleyDominik B BucherPublished in: Nature communications (2023)
Negatively-charged boron vacancy centers ([Formula: see text]) in hexagonal Boron Nitride (hBN) are attracting increasing interest since they represent optically-addressable qubits in a van der Waals material. In particular, these spin defects have shown promise as sensors for temperature, pressure, and static magnetic fields. However, their short spin coherence time limits their scope for quantum technology. Here, we apply dynamical decoupling techniques to suppress magnetic noise and extend the spin coherence time by two orders of magnitude, approaching the fundamental T 1 relaxation limit. Based on this improvement, we demonstrate advanced spin control and a set of quantum sensing protocols to detect radiofrequency signals with sub-Hz resolution. The corresponding sensitivity is benchmarked against that of state-of-the-art NV-diamond quantum sensors. This work lays the foundation for nanoscale sensing using spin defects in an exfoliable material and opens a promising path to quantum sensors and quantum networks integrated into ultra-thin structures.
Keyphrases
- density functional theory
- molecular dynamics
- single molecule
- room temperature
- energy transfer
- transition metal
- monte carlo
- low cost
- high resolution
- molecularly imprinted
- deep learning
- preterm infants
- artificial intelligence
- smoking cessation
- catheter ablation
- ultrasound guided
- low birth weight
- tandem mass spectrometry