Analog Quantum Simulation of Extremely Sub-Ohmic Spin-Boson Models
Abstract
We propose a scheme for the quantum simulation of sub-Ohmic spin--boson models by color centers in free-standing hexagonal boron nitride (h-BN) membranes. The electronic spin of a color center that couples to the membrane vibrational spectrum constitute the physical model. The spin-motion coupling is provided by an external magnetic field gradient. In this study, we show that a class of spectral densities can be attained by engineering geometry and boundary conditions of the h-BN resonator. We then put our focus on two extreme cases, i.e. - and white-noise spectral densities. Spin coherence and polarization dynamics are studied. Our calculations show coherence revivals at periods set by the bath characteristic frequency signaling the non-Markovian nature of the baths. The nonequilibrium dynamics of the spin polarization exhibits a coherent localization, a property peculiar to the quantum phase transition in extremely sub-Ohmic spin-boson models. Our scheme may find application in understanding sources of decoherence in solid-state quantum bits.
Cite
@article{arxiv.1808.02916,
title = {Analog Quantum Simulation of Extremely Sub-Ohmic Spin-Boson Models},
author = {Mehdi Abdi and Martin B. Plenio},
journal= {arXiv preprint arXiv:1808.02916},
year = {2018}
}
Comments
5 pages and 3 figures