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20192025
most citedScalable quantum computation with fast gates in two-dimensional microtrap arrays of trapped ions

8 citations · 8 across the 1 of their papers we have counts for

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quant-ph2025

High-Fidelity Raman Spin-Dependent Kicks in the Presence of Micromotion

Haonan Liu, Varun D. Vaidya, Monica Gutierrez Galan +3

We propose high-fidelity single-qubit spin-dependent kicks (SDKs) for trapped ions using nanosecond Raman pulses via amplitude modulation of a continuous-wave laser with a tunable…

quant-ph2025

Radial Fast Entangling Gates Under Micromotion in Trapped-Ion Quantum Computers

Phoebe Grosser, Monica Gutierrez Galan, Isabelle Savill-Brown +7

Micromotion in radio-frequency ion traps is generally considered detrimental for quantum logic gates, and is typically minimized in state-of-the-art experiments. However, as a dete…

quant-ph2024

Fast mixed-species quantum logic gates for trapped-ion quantum networks

Zain Mehdi, Varun D. Vaidya, Isabelle Savill-Brown +6

Quantum logic operations between physically distinct qubits is an essential aspect of large-scale quantum information processing. We propose an approach to high-speed mixed-species…

quant-ph20208 cited

Scalable quantum computation with fast gates in two-dimensional microtrap arrays of trapped ions

Zain Mehdi, Alexander K. Ratcliffe, Joseph J. Hope

We theoretically investigate the use of fast pulsed two-qubit gates for trapped ion quantum computing in a two-dimensional microtrap architecture. In one dimension, such fast gates…

quant-ph2020

Fast entangling gates in long ion chains

Zain Mehdi, Alexander K. Ratcliffe, Joseph J. Hope

We present a model for implementing fast entangling gates (s) with ultra-fast pulses in arbitrarily long ion chains, that requires low numbers of pulses and can be imple…

quant-ph2019

Optimised fast gates for quantum computing with trapped ions

Evan P. G. Gale, Zain Mehdi, Lachlan M. Oberg +3

We present an efficient approach to optimising pulse sequences for implementing fast entangling two-qubit gates on trapped ion quantum information processors. We employ a two-phase…