Content area

Abstract

Trapped ions in radio-frequency traps are among the leading approaches for realizing quantum computers, because of high-fidelity quantum gates and long coherence times1-3. However, the use of radio-frequencies presents several challenges to scaling, including requiring compatibility of chips with high voltages4, managing power dissipation5 and restricting transport and placement of ions6. Here we realize a micro-fabricated Penning ion trap that removes these restrictions by replacing the radio-frequency field with a 3 T magnetic field. We demonstrate full quantum control of an ion in this setting, as well as the ability to transport the ion arbitrarily in the trapping plane above the chip. This unique feature of the Penning micro-trap approach opens up a modification of the quantum charge-coupled device architecture with improved connectivity and flexibility, facilitating the realization of large-scale trapped-ion quantum computing, quantum simulation and quantum sensing.

Details

Title
Penning micro-trap for quantum computing
Author
Jain, Shreyans 1 ; Sägesser, Tobias 1 ; Hrmo, Pavel 1 ; Torkzaban, Celeste 1 ; Stadler, Martin 1 ; Oswald, Robin; Axline, Chris; Bautista-Salvador, Amado; Ospelkaus, Christian; Kienzler, Daniel; Home, Jonathan

 Department of Physics, ETH Zürich, Zurich, Switzerland 
Pages
510-514,514A-514G
Section
Article
Publication year
2024
Publication date
Mar 21, 2024
Publisher
Nature Publishing Group
ISSN
00280836
e-ISSN
14764687
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
2973696454
Copyright
Copyright Nature Publishing Group Mar 21, 2024