Dephasing mechanisms of diamond-based nuclear-spin memories for quantum networks
Abstract
We probe dephasing mechanisms within a quantum network node consisting of a single nitrogen-vacancy centre electron spin that is hyperfine coupled to surrounding nuclear-spin quantum memories. Previous studies have analysed memory dephasing caused by the stochastic electron-spin reset process, which is a component of optical internode entangling protocols. Here, we find, by using dynamical decoupling techniques and exploiting phase matching conditions in the electron-nuclear dynamics, that control infidelities and quasi-static noise are the major contributors to memory dephasing induced by the entangling sequence. These insights enable us to demonstrate a 19-fold improved memory performance which is still not limited by the electron reinitialization process. We further perform pump-probe studies to investigate the spin-flip channels during the optical electron spin reset. We find that spin-flips occur via decay from the meta-stable singlet states with a branching ratio of 8(1):1:1, in contrast with previous work. These results allow us to formulate straightforward improvements to diamond-based quantum networks and similar architectures.
Keywords
Cite
@article{arxiv.1802.05996,
title = {Dephasing mechanisms of diamond-based nuclear-spin memories for quantum networks},
author = {N. Kalb and P. C. Humphreys and J. J. Slim and R. Hanson},
journal= {arXiv preprint arXiv:1802.05996},
year = {2018}
}
Comments
11 pages, 6 figures