Trapping an atomic ion using time-division multiplexed digital-to-analog converters
Abstract
Independent control of numerous electrodes in quantum charge-coupled device architectures presents a significant challenge for wiring and hardware scalability. To address this issue, we demonstrate a voltage control method based on time-division multiplexing (TDM). This approach utilizes a single high-update-rate digital-to-analog converter (DAC) to sequentially generate control signals for multiple electrodes, thereby reducing both the number of required DACs and associated wiring. We experimentally validate this concept by developing a 10-channel system that operates with only two DACs. The developed TDM-based voltage control system is applied to a surface electrode trap, where we successfully trap a single 40Ca+ ion and demonstrate a simple ion transport primitive. This approach offers a resource-efficient and scalable solution for advanced quantum computing systems based on trapped ions.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (7)
Ryutaro Ohira
QuEL, Inc. 1 , Hachioji ON Building 5F, 4-7-14 Myojincho, Hachioji, Tokyo,
Masanari Miyamoto
Shinichi Morisaka
QuEL, Inc. 1 , Hachioji ON Building 5F, 4-7-14 Myojincho, Hachioji, Tokyo,
Ippei Nakamura
Komaba Institute for Science (KIS), The University of Tokyo 4 , 3-8-1 Komaba, Meguro 153-8902, Tokyo,
Atsushi Noguchi
Komaba Institute for Science (KIS), The University of Tokyo 4 , 3-8-1 Komaba, Meguro 153-8902, Tokyo,
Utako Tanaka
Takefumi Miyoshi
QuEL, Inc. 1 , Hachioji ON Building 5F, 4-7-14 Myojincho, Hachioji, Tokyo,