Optimized surface ion trap design for tight confinement and separation of ion chains

Fuente: arXiv
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Autores principales: Gerasin, Ilya, Zhadnov, Nikita, Kudeyarov, Konstantin, Khabarova, Ksienia, Kolachevsky, Nikolay, Semerikov, Ilya
Formato: Preprint
Publicado: 2024
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author Gerasin, Ilya
Zhadnov, Nikita
Kudeyarov, Konstantin
Khabarova, Ksienia
Kolachevsky, Nikolay
Semerikov, Ilya
author_facet Gerasin, Ilya
Zhadnov, Nikita
Kudeyarov, Konstantin
Khabarova, Ksienia
Kolachevsky, Nikolay
Semerikov, Ilya
contents Qubit systems based on trapped ultracold ions win one of the leading positions in the quantum computing field, demonstrating quantum algorithms with the highest complexity to date. Surface Paul traps for ion confinement open the opportunity to scale quantum processors to hundreds of qubits and enable high-connectivity manipulations on ions. To fabricate such a system with certain characteristics, the special design of a surface electrode structure is required. The depth of the trapping potential, the stability parameter, the secular frequency and the distance between an ion and the trap surface should be optimized for better performance. Here we present the optimized design of a relatively simple surface trap that allows several important high-fidelity primitives: tight ion confinement, laser cooling, and wide optical access. The suggested trap design also allows to perform an important basic operation, namely, splitting an ion chain into two parts.
format Preprint
id arxiv_https___arxiv_org_abs_2407_14195
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Optimized surface ion trap design for tight confinement and separation of ion chains
Gerasin, Ilya
Zhadnov, Nikita
Kudeyarov, Konstantin
Khabarova, Ksienia
Kolachevsky, Nikolay
Semerikov, Ilya
Quantum Physics
Atomic Physics
Qubit systems based on trapped ultracold ions win one of the leading positions in the quantum computing field, demonstrating quantum algorithms with the highest complexity to date. Surface Paul traps for ion confinement open the opportunity to scale quantum processors to hundreds of qubits and enable high-connectivity manipulations on ions. To fabricate such a system with certain characteristics, the special design of a surface electrode structure is required. The depth of the trapping potential, the stability parameter, the secular frequency and the distance between an ion and the trap surface should be optimized for better performance. Here we present the optimized design of a relatively simple surface trap that allows several important high-fidelity primitives: tight ion confinement, laser cooling, and wide optical access. The suggested trap design also allows to perform an important basic operation, namely, splitting an ion chain into two parts.
title Optimized surface ion trap design for tight confinement and separation of ion chains
topic Quantum Physics
Atomic Physics
url https://arxiv.org/abs/2407.14195