Exact Results for a Boundary-Driven Double Spin Chain and Resource-Efficient Remote Entanglement Stabilization
Abstract
We derive an exact solution for the steady state of a setup where two -coupled -qubit spin chains (with possibly non-uniform couplings) are subject to boundary Rabi drives, and common boundary loss generated by a waveguide (either bidirectional or unidirectional). For a wide range of parameters, this system has a pure entangled steady state, providing a means for stabilizing remote multi-qubit entanglement without the use of squeezed light. Our solution also provides insights into a single boundary-driven dissipative spin chain that maps to an interacting fermionic model. The non-equilibrium steady state exhibits surprising correlation effects, including an emergent pairing of hole excitations that arises from dynamically constrained hopping. Our system could be implemented in a number of experimental platforms, including circuit QED.
Keywords
Cite
@article{arxiv.2307.09482,
title = {Exact Results for a Boundary-Driven Double Spin Chain and Resource-Efficient Remote Entanglement Stabilization},
author = {Andrew Lingenfelter and Mingxing Yao and Andrew Pocklington and Yu-Xin Wang and Abdullah Irfan and Wolfgang Pfaff and Aashish A. Clerk},
journal= {arXiv preprint arXiv:2307.09482},
year = {2024}
}
Comments
12 pages main text, 13 figures, 15 page appendix; equivalent to published version