Accurate Quantum Logic Gates by Spin Echo in Rydberg Atoms
arXiv:1809.01758 · doi:10.1103/PhysRevApplied.10.034006
Abstract
Scalable quantum computing is based on realizable accurate quantum gates. For neutral atoms, it is an outstanding challenge to design a high-fidelity two-qubit entangling gate without resorting to difficult techniques like shaping laser pulses or cooling atoms to motional ground states. By using spin echo to suppress the blockade error, we propose an easily realizable controlled-phase Rydberg quantum gate of high intrinsic fidelity. In the context of spin echo, we show that the fundamental blockade error of the traditional Rydberg gate, on the order of , actually results from two `clockwise' rotations of Rabi frequencies . In our `echo' sequence, such an error can be suppressed to the order of by adding two `anticlockwise' rotations with frequencies . With the blockade error effectively removed, the error caused by Rydberg state decay becomes the final fundamental limit to the gate accuracy, which in principle, can be reduced beyond the level of . Furthermore, due to the small population involved in the `echo' process, the spin-echo gate is robust against the variation of Rydberg blockade caused by the drift of the qubits, so that it can still be much more accurate than that of a traditional Rydberg gate even for qubits cooled only to the sub-mK regime.
8 pages, 6 figures
References in corpus (8)
- Quasiclassical calculations of BBR-induced depopulation rates and effective lifetimes of Rydberg nS, nP and nD alkali-metal atoms with n < 80
- Coherent many-body spin dynamics in a long-range interacting Ising chain
- Deterministic entanglement of two neutral atoms via Rydberg blockade
- Entangling two atoms of different isotopes via Rydberg blockade
- High-fidelity Rydberg quantum gate via a two-atom dark state
- Quantum computing by optical control of electron spins
- Entanglement of neutral-atom chains by spin-exchange Rydberg interaction
- Universal Barenco quantum gates via a tunable non-collinear interaction
Cited by in corpus (20)
- Quantum simulation and computing with Rydberg-interacting qubits
- Quantum logic and entanglement by neutral Rydberg atoms: methods and fidelity
- Optimized Geometric Quantum Computation with mesoscopic ensemble of Rydberg Atoms
- Resilient quantum gates on periodically driven Rydberg atoms
- Fast, Accurate, and Realizable Two-Qubit Entangling Gates by Quantum Interference in Detuned Rabi Cycles of Rydberg Atoms
- Suppress motional dephasing of ground-Rydberg transition for high-fidelity quantum control with neutral atoms
- Doppler-resilient ground-Rydberg transition and its application in high-fidelity entangling gates with neutral atoms
- Application of adiabatic passage in Rydberg atomic ensembles for quantum information processing
- Objective Compressive Quantum Process Tomography
- Universal compressive characterization of quantum dynamics
- Transition Slow-Down by Rydberg Interaction of Neutral Atoms and a Fast Controlled-NOT Quantum Gate
- Adiabatic and high-fidelity quantum gates with hybrid Rydberg-Rydberg interactions
- Rydberg quantum computation with nuclear spins in two-electron neutral atoms
- Hyperentanglement of divalent neutral atoms by Rydberg blockade
- High-fidelity Rydberg controlled-Z gates with optimal pulses
- Single-site Rydberg addressing in 3D atomic arrays for quantum computing with neutral atoms
- Quantum gates with weak van der Waals interactions of neutral Rydberg atoms
- Purifying teleportation
- Fast nuclear-spin gates and electrons-nuclei entanglement of neutral atoms in weak magnetic fields
- Benchmarking quantum tomography completeness and fidelity with machine learning