Sensing single molecule magnets with nitrogen vacancy centers
arXiv:2505.19207 · doi:10.1021/acs.nanolett.5c05066
Abstract
Single-molecule magnets (SMMs) are molecules that can function as nanoscale magnets with potential use as magnetic memory bits. While SMMs can retain magnetization at low temperatures, characterizing them on surface and at room temperature remains challenging and requires specialized nanoscale techniques. Here, we use single nitrogen-vacancy (NV) centers in diamond as highly sensitive, broadband magnetic field sensors to detect the magnetic noise of cobalt-based SMMs deposited on a diamond surface. We measure the NV relaxation and decoherence times at 296 K and at 5-8 K, observing a significant influence of the SMMs on them. From this, we can infer the SMMs' magnetic noise spectral density (NSD) and underlying magnetic properties. Moreover, we observe the effect of an applied magnetic field on the SMMs' NSD at low temperatures. The method provides nanoscale sensitivity for characterizing SMMs under realistic conditions relevant to their use as surface-bound memory units.
References in corpus (16)
- The nitrogen-vacancy colour centre in diamond
- Universal dynamical decoupling of a single solid-state spin from a spin bath
- Nanoscale magnetic imaging of a single electron spin under ambient conditions
- Temperature and magnetic field dependent longitudinal spin relaxation in nitrogen-vacancy ensembles in diamond
- Magnetic spin imaging under ambient conditions with sub-cellular resolution
- Quenching Spin Decoherence in Diamond through Spin Bath Polarization
- Spin relaxometry of single nitrogen-vacancy defects in diamond nanocrystals for magnetic noise sensing
- Origins of diamond surface noise probed by correlating single spin measurements with surface spectroscopy
- Dynamical decoupling sequence construction as a filter-design problem
- Single-molecule Nanomagnets
- Coupling single molecule magnets to quantum circuits
- Decay of Rabi oscillations by dipolar-coupled dynamical spin environments
- Probing many-body dynamics in a two dimensional dipolar spin ensemble
- Tracking Temperature Dependent Relaxation Times of Individual Ferritin Nanomagnets with a Wide-band Quantum Spectrometer
- Electron spin as a spectrometer of nuclear spin noise and other fluctuations
- Relaxometry and dephasing imaging of superparamagnetic magnetite nanoparticles using a single qubit