Nanoscale Dynamic Readout of a Chemical Redox Process Using Radicals Coupled with Nitrogen-Vacancy Centers in Nanodiamonds
arXiv:2010.11257 · doi:10.1021/acsnano.0c04010
Abstract
Biocompatible nanoscale probes for sensitive detection of paramagnetic species and molecules associated with their (bio)chemical transformations would provide a desirable tool for a better understanding of cellular redox processes. Here, we describe an analytical tool based on quantum sensing techniques. We magnetically coupled negatively charged nitrogen-vacancy (NV) centers in nanodiamonds (NDs) with nitroxide radicals present in a bioinert polymer coating of the NDs. We demonstrated that the T1 spin relaxation time of NV centers is very sensitive to the number of nitroxide radicals, with a resolution down to ~10 spins per ND (detection of approximately mol in a localized volume). The detection is based on T1 shortening upon the radical attachment and we propose a theoretical model describing this phenomenon. We further show this colloidally stable, water-soluble system can be used dynamically for spatiotemporal readout of a redox chemical process (oxidation of ascorbic acid) occurring near the ND surface in an aqueous environment under ambient conditions.
26 pages (plus 18 pages of supporting information), 3 figures (plus 8 figures in supporting information)
References in corpus (4)
- Spectroscopy of Surface-Induced Noise Using Shallow Spins in Diamond
- Electron spin resonance of nitrogen-vacancy centers in optically trapped nanodiamonds
- Single DNA Electron Spin Resonance Spectroscopy in Aqueous Solutions
- Tracking Temperature Dependent Relaxation Times of Individual Ferritin Nanomagnets with a Wide-band Quantum Spectrometer
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- Engineering Nanodiamonds for Quantum Sensing: Material Constraints at the Nanoscale