Two-Qubit Geometric Phase Gate for Quantum Dot Spins using Cavity Polariton Resonance
Quantum Physics
2012-06-15 v2 Mesoscale and Nanoscale Physics
Abstract
We describe a design to implement a two-qubit geometric phase gate, by which a pair of electrons confined in adjacent quantum dots are entangled. The entanglement is a result of the Coulomb exchange interaction between the optically excited exciton-polaritons and the localized spins. This optical coupling, resembling the electron-electron Ruderman-Kittel-Kasuya-Yosida (RKKY) inter- actions, offers high speed, high fidelity two-qubit gate operation with moderate cavity quality factor Q. The errors due to the finite lifetime of the polaritons can be minimized by optimizing the optical pulse parameters (duration and energy). The proposed design, using electrostatic quantum dots, maximizes entanglement and ensures scalability.
Cite
@article{arxiv.1201.3725,
title = {Two-Qubit Geometric Phase Gate for Quantum Dot Spins using Cavity Polariton Resonance},
author = {Shruti Puri and Na Young Kim and Yoshihisa Yamamoto},
journal= {arXiv preprint arXiv:1201.3725},
year = {2012}
}