Two-qubit gate protocols with microwave-dressed Rydberg ions in a linear Paul trap
Joseph W. P. Wilkinson, Katrin Bolsmann, Thiago L. M. Guedes, Markus, M\"uller, Igor Lesanovsky

TL;DR
This paper theoretically analyzes three protocols for fast, high-fidelity two-qubit gates using microwave-dressed Rydberg ions in a linear Paul trap, demonstrating fidelities up to 99.25% within 0.2 microseconds.
Contribution
It introduces a microscopic model and optimization scheme for Rydberg ion gate protocols, achieving high fidelity and speed surpassing ground-state ion gates.
Findings
Optimized gate fidelity up to 99.25%
Gate duration of 0.2 microseconds
Non-adiabatic effects reduce fidelity but can be mitigated
Abstract
Ultracold trapped atomic ions excited into highly energetic Rydberg states constitute a promising platform for scalable quantum information processing. Elementary building blocks for such tasks are high-fidelity and sufficiently fast entangling two-qubit gates, which can be achieved via strong dipole-dipole interactions between microwave-dressed Rydberg ions, as recently demonstrated in a breakthrough experiment at https://www.nature.com/articles/s41586-020-2152-9 . We theoretically investigate the performance of three protocols leading to controlled-phase gate operations. Starting from a microscopic description of Rydberg ions in a linear Paul trap, we derive an effective Hamiltonian that faithfully captures the essential dynamics underlying the gate protocols. We then use an optimization scheme to fine-tune experimentally controllable parameters like laser detuning and Rabi frequency…
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