Room temperature relaxometry of single nitrogen-vacancy centers in proximity to -RuCl nanoflakes
arXiv:2312.15541 · doi:10.1021/acs.nanolett.3c05090
Abstract
Investigating spin and charge noise in strongly correlated electron systems is a valuable way to analyze their physical properties and unlock new phases of matter. In this context, nitrogen-vacancy (NV) center-based magnetometry has been proven to be a versatile sensor for various classes of magnetic materials in broad temperature and frequency ranges. Here, we use longitudinal relaxation time of single NV centers to investigate the spin dynamics of nanometers-thin flakes of -RuCl at room temperature. We observe a significant reduction in the in the presence of -RuCl in proximity to our NVs, which we attribute to paramagnetic spin noise confined in the 2D hexagonal plane. Furthermore, the time exhibits an almost linear increase with an applied external magnetic field. We associate this trend with the alteration of spin and charge noise in -RuCl under an external magnetic field. These findings suggest that the influence of the room-temperature spin dynamics of -RuCl on the longitudinal relaxation time of the NV center can be used to gain information on the material itself and the technique to be used on other 2D materials.