Fabrication of surface ion traps with integrated current carrying wires enabling high magnetic field gradients

Author:

Siegele-Brown MartinORCID,Hong Seokjun,Lebrun-Gallagher Foni RaphaëlORCID,Hile Samuel JamesORCID,Weidt Sebastian,Hensinger Winfried KarlORCID

Abstract

Abstract A major challenge for quantum computers is the scalable simultaneous execution of quantum gates. One approach to address this in trapped ion quantum computers is the implementation of quantum gates based on static magnetic field gradients and global microwave fields. In this paper, we present the fabrication of surface ion traps with integrated copper current carrying wires embedded inside the substrate below the ion trap electrodes, capable of generating high magnetic field gradients. The copper layer’s measured sheet resistance of 1.12 mΩ/sq at room temperature is sufficiently low to incorporate complex designs, without excessive power dissipation at high currents causing a thermal runaway. At a temperature of 40 K the sheet resistance drops to 20.9 μΩ/sq giving a lower limit for the residual resistance ratio of 100. Continuous currents of 13 A can be applied, resulting in a simulated magnetic field gradient of 144 T m−1 at the ion position, which is 125 μm from the trap surface for the particular anti-parallel wire pair in our design.

Funder

University of Sussex

Fonds National de la Recherche Luxembourg

Office of Naval Research

Army Research Office

Engineering and Physical Sciences Research Council

H2020 Excellent Science

Publisher

IOP Publishing

Subject

Electrical and Electronic Engineering,Physics and Astronomy (miscellaneous),Materials Science (miscellaneous),Atomic and Molecular Physics, and Optics

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