Quantum computing architecture with Rydberg gates in trapped ions
Han Bao, Jonas Vogel, Ulrich Poschinger, Ferdinand Schmidt-Kaler

TL;DR
This paper proposes a fast, all-to-all entangling gate scheme for trapped ion quantum computers using Rydberg states, enabling scalable and reconfigurable quantum processing with realistic experimental conditions.
Contribution
It introduces a novel entangling scheme leveraging Rydberg states and collective vibrational modes for scalable ion trap quantum computing.
Findings
Gate operation times of microseconds for ion pairs
Realistic electric field ramps considered
Compatible with scalable quantum architectures
Abstract
Fast entangling gate operations are a fundamental prerequisite for quantum simulation and computation. We propose an entangling scheme for arbitrary pairs of ions in a linear crystal, harnessing the high electric polarizability of highly excited Rydberg states. An all-to-all quantum gate connectivity is based on an initialization of a pair of ions to a superposition of ground- and Rydberg-states by laser excitation, followed by the entangling gate operation which relies on a state-dependent frequency shift of collective vibrational modes of the crystal. This gate operation requires applying an electric waveform to trap electrodes. Employing transverse collective modes of oscillation, we reveal order of operation times within any of the qubit pairs in a small crystal. In our calculation, we are taking into account realistic experimental conditions and feasible electric field…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum Information and Cryptography · Quantum Mechanics and Applications
