Grover search algorithm with Rydberg-blockaded atoms: Quantum Monte Carlo simulations
arXiv:1512.05588 · doi:10.1088/0953-4075/49/9/094004
Abstract
We consider the Grover search algorithm implementation for a quantum register of size using k (or k +1) microwave- and laser-driven Rydberg-blockaded atoms, following the proposal by Mølmer, Isenhower, and Saffman [J. Phys. B 44, 184016 (2011)]. We suggest some simplifications for the microwave and laser couplings, and analyze the performance of the algorithm for up to k = 4 multilevel atoms under realistic experimental conditions using quantum stochastic (Monte-Carlo) wavefunction simulations.
Cited by in corpus (11)
- Quantum computing with atomic qubits and Rydberg interactions: Progress and challenges
- Fast multi-qubit gates by adiabatic evolution in interacting excited state manifolds
- Single-step implementation of high fidelity -bit Toffoli gate
- Unitary and non-unitary quantum cellular automata with Rydberg arrays
- Demonstration of a Quantum Gate using Electromagnetically Induced Transparency
- Photon recoil and laser focusing limits to Rydberg gate fidelity
- Rydberg-interaction gates via adiabatic passage and phase control of driving fields
- A master equation for strongly interacting dipoles
- Fast measurements and multiqubit gates in dual species atomic arrays
- Quantum-classical tradeoffs and multi-controlled quantum gate decompositions in variational algorithms
- High-fidelity multiqubit Rydberg gates via two-photon adiabatic rapid passage