English

Enhanced molecular spin-photon coupling at superconducting nanoconstrictions

Quantum Physics 2020-06-08 v1 Mesoscale and Nanoscale Physics

Abstract

We combine top-down and bottom-up nanolithography to optimize the coupling of small molecular spin ensembles to 1.41.4 GHz on-chip superconducting resonators. Nanoscopic constrictions, fabricated with a focused ion beam at the central transmission line, locally concentrate the microwave magnetic field. Drops of free-radical molecules have been deposited from solution onto the circuits. For the smallest ones, the molecules were delivered at the relevant circuit areas by means of an atomic force microscope. The number of spins NeffN_{\rm eff} effectively coupled to each device was accurately determined combining Scanning Electron and Atomic Force Microscopies. The collective spin-photon coupling constant has been determined for samples with NeffN_{\rm eff} ranging between 2×1062 \times 10^{6} and 101210^{12} spins, and for temperatures down to 4444 mK. The results show the well-known collective enhancement of the coupling proportional to the square root of NeffN_{\rm eff}. The average coupling of individual spins is enhanced by more than four orders of magnitude (from 44 mHz up to above 180180 Hz) when the transmission line width is reduced from 400400 microns down to 4242 nm, and reaches maximum values near 11 kHz for molecules located on the smallest nanoconstrictions. This result opens promising avenues for the realization of magnetic spectroscopy experiments at the nanoscale and for the development of hybrid quantum computation architectures based on molecular spin qubits.

Keywords

Cite

@article{arxiv.2006.03386,
  title  = {Enhanced molecular spin-photon coupling at superconducting nanoconstrictions},
  author = {I. Gimeno and W. Kersten and M. C. Pallarés and P. Hermosilla and M. J. Martínez-Pérez and M. D. Jenkins and A. Angerer and C. Sánchez-Azqueta and D. Zueco and J. Majer and A. Lostao and F. Luis},
  journal= {arXiv preprint arXiv:2006.03386},
  year   = {2020}
}

Comments

31 pages, 6 figures, supporting information in ancillary PDF file

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