Rydberg-atom-based scheme of nonadiabatic geometric quantum computation
arXiv:1711.04917 · doi:10.1103/PhysRevA.96.052316
Abstract
Nonadiabatic geometric quantum computation provides a means to perform fast and robust quantum gates. It has been implemented in various physical systems, such as trapped ions, nuclear magnetic resonance and superconducting circuits. Another system being adequate for implementation of nonadiabatic geometric quantum computation may be Rydberg atoms, since their internal states have very long coherence time and the Rydberg-mediated interaction facilitates the implementation of a two-qubit gate. Here, we propose a scheme of nonadiabatic geometric quantum computation based on Rydberg atoms, which combines the robustness of nonadiabatic geometric gates with the merits of Rydberg atoms.
6 pages, 3 figures
References in corpus (12)
- Experimental Realization of Universal Geometric Quantum Gates with Solid-State Spins
- Evidence for coherent collective Rydberg excitation in the strong blockade regime
- Quantum gates and multi-particle entanglement by Rydberg excitation blockade and adiabatic passage
- Single-loop multiple-pulse nonadiabatic holonomic quantum gates
- Robust quantum logic in neutral atoms via adiabatic Rydberg dressing
- Single-shot realization of nonadiabatic holonomic quantum gates in decoherence-free subspaces
- Composite nonadiabatic holonomic quantum computation
- A scheme for unconventional geometric quantum computation in cavity QED
- Photon-photon gate via the interaction between two collective Rydberg excitations
- Nonadiabatic geometric quantum computation in decoherence-free subspaces based on unconventional geometric phases
- Cavity QED implementation of non-adiabatic holonomies for universal quantum gates in decoherence-free subspaces with nitrogen-vacancy centers
- Geometric phase gate on an optical transition for ion trap quantum computation
Cited by in corpus (12)
- A concise review of Rydberg atom based quantum computation and quantum simulation
- General approach for constructing Hamiltonians for nonadiabatic holonomic quantum computation
- Robust and Fast Holonomic Quantum Gates with Encoding on Superconducting Circuits
- Approach to realizing nonadiabatic geometric gates with prescribed evolution paths
- Single-atom verification of the noise-resilient and fast characteristics of universal nonadiabatic noncyclic geometric quantum gates
- Nonadiabatic holonomic multiqubit controlled gates
- Dynamical-decoupling-protected nonadiabatic holonomic quantum computation
- Unselective ground-state blockade of Rydberg atoms for implementing quantum gates
- Nonadiabatic geometric quantum gates that are insensitive to qubit-frequency drifts
- Ultrafast Holonomic Quantum Gates
- Nonadiabatic geometric quantum computation with shortened path on superconducting circuits
- Robust nonadiabatic geometric quantum computation by dynamical correction