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Trapped Ion Quantum Computing Using Optical Tweezers and Electric Fields

M. Mazzanti, R. X. Schüssler, J. D. Arias Espinoza, Z. Wu, R. Gerritsma, A. Safavi-Naini

2021Physical Review Letters22 citationsDOIOpen Access PDF

Abstract

We propose a new scalable architecture for trapped ion quantum computing that combines optical tweezers delivering qubit state-dependent local potentials with oscillating electric fields. Since the electric field allows for long-range qubit-qubit interactions mediated by the center-of-mass motion of the ion crystal alone, it is inherently scalable to large ion crystals. Furthermore, our proposed scheme does not rely on either ground-state cooling or the Lamb-Dicke approximation. We study the effects of imperfect cooling of the ion crystal, as well as the role of unwanted qubit-motion entanglement, and discuss the prospects of implementing the state-dependent tweezers in the laboratory.

Topics & Concepts

Optical tweezersQubitElectric fieldIonPhysicsQuantum computerScalabilityIon trappingQuantumQuantum sensorTrapped ion quantum computerOptical physicsOptoelectronicsField (mathematics)Quantum informationQuantum dotQuantum simulatorQuantum opticsQuantum technologyScheme (mathematics)Electric potentialAtomic physicsNanoscopic scaleQuantum information processingTweezersQuantum Information and CryptographyCold Atom Physics and Bose-Einstein CondensatesQuantum Computing Algorithms and Architecture
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