Two-dimensional spin systems in PECVD-grown diamond with tunable density and long coherence for enhanced quantum sensing and simulation
arXiv:2211.02282 · doi:10.1063/5.0133501
Abstract
Systems of spins engineered with tunable density and reduced dimensionality enable a number of advancements in quantum sensing and simulation. Defects in diamond, such as nitrogen-vacancy (NV) centers and substitutional nitrogen (P1 centers), are particularly promising solid-state platforms to explore. However, the ability to controllably create coherent, two-dimensional spin systems and characterize their properties, such as density, depth confinement, and coherence is an outstanding materials challenge. We present a refined approach to engineer dense (1 ppmnm), 2D nitrogen and NV layers in diamond using delta-doping during plasma-enhanced chemical vapor deposition (PECVD) epitaxial growth. We employ both traditional materials techniques, e.g. secondary ion mass spectrometry (SIMS), alongside NV spin decoherence-based measurements to characterize the density and dimensionality of the P1 and NV layers. We find P1 densities of 5-10 ppmnm, NV densities between 1 and 3.5 ppmnm tuned via electron irradiation dosage, and depth confinement of the spin layer down to 1.6 nm. We also observe high (up to 0.74) ratios of P1 to NV centers and reproducibly long NV coherence times, dominated by dipolar interactions with the engineered P1 and NV spin baths.
References in corpus (4)
- Long-lived and transient supersolid behaviors in dipolar quantum gases
- Engineering shallow spins in diamond with nitrogen delta-doping
- Many-Body Delocalization in Strongly Disordered System with Long-Range Interactions: Finite Size Scaling
- Quantum correlation in disordered spin systems: entanglement and applications to magnetic sensing
Cited by in corpus (8)
- Roadmap on Nanoscale Magnetic Resonance Imaging
- Coherent microwave, optical, and mechanical quantum control of spin qubits in diamond
- Spin squeezing in an ensemble of nitrogen-vacancy centers in diamond
- Spin coherence in strongly coupled spin baths in quasi-two-dimensional layers
- A strongly interacting, two-dimensional, dipolar spin ensemble in (111)-oriented diamond
- Role of Oxygen in Laser Induced Contamination at Diamond-Vacuum Interfaces
- Scalable, nanoscale positioning of highly coherent color centers in prefabricated diamond nanostructures
- Creation of Depth-Confined, Shallow Nitrogen-Vacancy Centers in Diamond With Tunable Density