Rare-earth doped crystals have long coherence times and the potential to provide quantum interfaces between microwave and optical photons. Such applications benefit from a high cooperativity between the spin ensemble and a microwave cavity -- this motivates an increase in the rare earth ion concentration which in turn impacts the spin coherence lifetime. We measure spin dynamics of two rare-earth spin species, 145Nd and Yb doped into Y2SiO5, coupled to a planar microwave resonator in the high cooperativity regime, in the temperature range 1.2 K to 14 mK. We identify relevant decoherence mechanisms including instantaneous diffusion arising from resonant spins and temperature-dependent spectral diffusion from impurity electron and nuclear spins in the environment. We explore two methods to mitigate the effects of spectral diffusion in the Yb system in the low-temperature limit, first, using magnetic fields of up to 1 T to suppress impurity spin dynamics and, second, using transitions with low effective g-factors to reduce sensitivity to such dynamics. Finally, we demonstrate how the `clock transition' present in the 171Yb system at zero field can be used to increase coherence times up to T2=6(1) ms.
@article{arxiv.2206.04027,
title = {Coherent spin dynamics of rare-earth doped crystals in the high-cooperativity regime},
author = {Joseph Alexander and Gavin Dold and Oscar W. Kennedy and Mantas Šimėnas and James O'Sullivan and Christoph W. Zollitsch and Sacha Welinski and Alban Ferrier and Eloïse Lafitte-Houssat and Tobias Lindström and Philippe Goldner and John J. L. Morton},
journal= {arXiv preprint arXiv:2206.04027},
year = {2022}
}