Modified coherence of quantum spins in a damped pure-dephasing model
arXiv:2112.11711 · doi:10.1103/PhysRevB.105.094308
Abstract
We consider a spin- particle coupled to a structured bath of bosonic modes that decay into thermal baths. We obtain an analytic expression for the reduced spin state and use it to investigate non-Markovian spin dynamics. In the heavily overdamped regime, spin coherences are preserved due to a quantum Zeno affect. We extend the solution to two spins and include coupling between the modes, which can be leveraged for preservation of the symmetric spin subspace. For many spins, we find that inter-mode coupling gives rise to a privileged symmetric mode gapped from the other modes. This provides a handle to selectively address that privileged mode for quantum control of the collective spin. Finally, we show that our solution applies to defects in solid-state systems, such as NV centres in diamond.
17 pages, 7 figures
References in corpus (8)
- Scalable quantum register based on coupled electron spins in a room temperature solid
- Non-perturbative treatment of non-Markovian dynamics of open quantum systems
- Exploiting structured environments for efficient energy transfer: The phonon antenna mechanism
- Quantification of memory effects in the spin-boson model
- Amplification and suppression of system-bath correlation effects in an open many-body system
- Non-Markovian finite-temperature two-time correlation functions of system operators of a pure-dephasing model
- Non-Markovian effects in the spin-boson model at zero temperature
- Quantum optical master equation for solid-state quantum emitters