| Literature DB >> 33335106 |
Dinesh Pinto1,2, Domenico Paone1,3, Bastian Kern1, Tim Dierker4, René Wieczorek4, Aparajita Singha1, Durga Dasari3, Amit Finkler3,5, Wolfgang Harneit4, Jörg Wrachtrup1,3, Klaus Kern6,7.
Abstract
Atomic spins for quantum technologies need to be individually addressed and positioned with nanoscale precision. C60 fullerene cages offer a robust packaging for atomic spins, while allowing in-situ physical positioning at the nanoscale. However, achieving single-spin level readout and control of endofullerenes has so far remained elusive. In this work, we demonstrate electron paramagnetic resonance on an encapsulated nitrogen spin (14N@C60) within a C60 matrix using a single near-surface nitrogen vacancy (NV) center in diamond at 4.7 K. Exploiting the strong magnetic dipolar interaction between the NV and endofullerene electronic spins, we demonstrate radio-frequency pulse controlled Rabi oscillations and measure spin-echos on an encapsulated spin. Modeling the results using second-order perturbation theory reveals an enhanced hyperfine interaction and zero-field splitting, possibly caused by surface adsorption on diamond. These results demonstrate the first step towards controlling single endofullerenes, and possibly building large-scale endofullerene quantum machines, which can be scaled using standard positioning or self-assembly methods.Entities:
Year: 2020 PMID: 33335106 DOI: 10.1038/s41467-020-20202-3
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919