Rapid Exchange Cooling with Trapped Ions
Abstract
The trapped-ion quantum charge-coupled device (QCCD) architecture is a leading candidate for advanced quantum information processing. In current QCCD implementations, imperfect ion transport and anomalous heating can excite ion motion during a calculation. To counteract this, intermediate cooling is necessary to maintain high-fidelity gate performance. Cooling the computational ions sympathetically with ions of another species, a commonly employed strategy, creates a significant runtime bottleneck. Here, we demonstrate a different approach we call exchange cooling. Unlike sympathetic cooling, exchange cooling does not require trapping two different atomic species. The protocol introduces a bank of "coolant" ions which are repeatedly laser cooled. A computational ion can then be cooled by transporting a coolant ion into its proximity. We test this concept experimentally with two ions, executing the necessary transport in 107 , an order of magnitude faster than typical sympathetic cooling durations. We remove over 96%, and as many as 102(5) quanta, of axial motional energy from the computational ion. We verify that re-cooling the coolant ion does not decohere the computational ion. This approach validates the feasibility of a single-species QCCD processor, capable of fast quantum simulation and computation.
Cite
@article{arxiv.2309.02581,
title = {Rapid Exchange Cooling with Trapped Ions},
author = {Spencer D. Fallek and Vikram S. Sandhu and Ryan A. McGill and John M. Gray and Holly N. Tinkey and Craig R. Clark and Kenton R. Brown},
journal= {arXiv preprint arXiv:2309.02581},
year = {2024}
}
Comments
22 pages, 7 figures; matching publication