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Electron Spin Coherences in Rare-Earth Optically Excited States for Microwave to Optical Quantum Transducers

Quantum Physics 2019-06-26 v2

Abstract

Efficient and reversible optical to microwave coherent transducers are required to enable entanglement transfer between superconducting qubits and light for quantum networks. Rare-earth-doped crystals that possess narrow optical and spin transitions are a promising way to implement these devices. Current approaches use ground-state electron spin transitions that have coherence lifetimes (T2T_2) often limited by spin flip-flop processes and/or spectral diffusion, even at very low temperatures. Here, we investigate spin coherence in an optically excited state of an Er3+^{3+}:Y2_2SiO5_5 crystal at temperatures from 1.6 to 3.5 K and under a weak 8.7 mT magnetic field. Spin coherence and population lifetimes of up to 1.6 μ\mus and 1.2 ms, respectively, are measured by 2- and 3-pulse optically-detected spin echo experiments. Analysis of the dephasing processes suggest that ms T2T_2 can be reached at lower temperatures for the excited-state spins, whereas ground-state spin states could be limited to a few μ\mus due to resonant interactions with the other Er3+^{3+} spins in the lattice (spin diffusion). We propose a quantum transducer scheme with the potential for close to unit efficiency that exploits the specific advantages offered by the spin states of optically excited electronic energy levels.

Keywords

Cite

@article{arxiv.1802.03354,
  title  = {Electron Spin Coherences in Rare-Earth Optically Excited States for Microwave to Optical Quantum Transducers},
  author = {Sacha Welinski and Philip J. T. Woodburn and Nikolai Lauk and Rufus L. Cone and Christoph Simon and Philippe Goldner and Charles W. Thiel},
  journal= {arXiv preprint arXiv:1802.03354},
  year   = {2019}
}