Development of a bipolar 50 V output digital-to-analog converter system for ion-shuttling operations

T T. Oshio (Graduate School of Engineering Science, Osaka University 1 , 1-3 Machikaneyama, Toyonaka, Osaka,) R R. Nishimoto (Graduate School of Engineering Science, Osaka University 1 , 1-3 Machikaneyama, Toyonaka, Osaka,) T T. Higuchi (Institute for Integrated Radiation and Nuclear Science, Kyoto University 3 , 2, Asashiro-Nishi, Kumatori-cho, Sennan-gun, Osaka,) K K. Hayasaka (Graduate School of Engineering Science, Osaka University 1 , 1-3 Machikaneyama, Toyonaka, Osaka,) K K. Koike (e-trees.Japan, Inc. 4 , Daiwaunyu Building 2F, 2-9-2 Owadamachi, Hachioji, Tokyo,) S S. Morisaka (Center for Quantum Information and Quantum Biology, Osaka University 5 , 1-2 Machikaneyama, Toyonaka, Osaka,) T T. Miyoshi (e-trees.Japan, Inc. 4 , Daiwaunyu Building 2F, 2-9-2 Owadamachi, Hachioji, Tokyo,) R R. Ohira (QuEL, Inc. 6 , Daiwaunyu Building 3F, 2-9-2 Owadamachi, Hachioji, Tokyo,) U U. Tanaka (Graduate School of Engineering Science, Osaka University 1 , 1-3 Machikaneyama, Toyonaka, Osaka,)

Abstract

The quantum charge-coupled device (QCCD) is one of the notable architectures to achieve large-scale trapped-ion quantum computers. To realize QCCD architecture, ions must be transported quickly while minimizing motional excitation. High-voltage sources are necessary to achieve such high-quality ion transport through a high secular frequency. In this study, we report the development of a field programmable gate array-based digital-to-analog converter (DAC) system with an output voltage range of ±50 V and demonstrate its effectiveness in ion transport operations. The device provides a 16-channel analog output, a maximum update rate of 16 mega updates per second, a slew rate of 20 V/μs, and a bandwidth of >200 kHz. By optimizing the voltage sets with quadratic programming, we experimentally confirmed that this DAC system can achieve more than twice the secular frequency attainable when its output range is restricted to ±10 V, which is consistent with the fact that scaling all electrode voltages by a factor of 5 will scale the secular frequency by 5. Since the output range of many commercially available DACs is commonly limited to ±10 V, this increase is effective for ion-shuttling operations, such as transport, split, and merge. The developed DAC system has the potential to increase the speed of ion transport thereby reducing processing times in QCCD-based quantum computers.

Article Details

Volume / Issue Vol. 137, Issue 14
Published April 14, 2025
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (9)

T

T. Oshio

Graduate School of Engineering Science, Osaka University 1 , 1-3 Machikaneyama, Toyonaka, Osaka,

R

R. Nishimoto

Graduate School of Engineering Science, Osaka University 1 , 1-3 Machikaneyama, Toyonaka, Osaka,

T

T. Higuchi

Institute for Integrated Radiation and Nuclear Science, Kyoto University 3 , 2, Asashiro-Nishi, Kumatori-cho, Sennan-gun, Osaka,

K

K. Hayasaka

Graduate School of Engineering Science, Osaka University 1 , 1-3 Machikaneyama, Toyonaka, Osaka,

K

K. Koike

e-trees.Japan, Inc. 4 , Daiwaunyu Building 2F, 2-9-2 Owadamachi, Hachioji, Tokyo,

S

S. Morisaka

Center for Quantum Information and Quantum Biology, Osaka University 5 , 1-2 Machikaneyama, Toyonaka, Osaka,

T

T. Miyoshi

e-trees.Japan, Inc. 4 , Daiwaunyu Building 2F, 2-9-2 Owadamachi, Hachioji, Tokyo,

R

R. Ohira

QuEL, Inc. 6 , Daiwaunyu Building 3F, 2-9-2 Owadamachi, Hachioji, Tokyo,

U

U. Tanaka

Graduate School of Engineering Science, Osaka University 1 , 1-3 Machikaneyama, Toyonaka, Osaka,