Gate-based Readout and Cooling of Neutral Atoms
Abstract
Neutral atom arrays have seen tremendous progress in quantum simulation, quantum metrology, and fault-tolerant quantum computing. However, hardware constraints such as atom loss and heating remain significant challenges. In this work, we introduce a comprehensive ancilla-based toolbox for optical tweezer experiments that utilizes high-fidelity Rydberg entangling gates and ancilla atoms to mitigate these physical limitations. First, we demonstrate repeated ancilla-based atom readout, achieving improved detection fidelity over multiple rounds with minimal perturbation to data atoms. Second, leveraging the quantized motional states in tweezer-trapped strontium atoms, we transduce quantum information from the electronic to the motional manifold. This enables us to perform mid-circuit ancilla-based atom loss detection in a coherence-preserving fashion. Finally, we demonstrate algorithmic cooling, a circuit-based sequence that deterministically cools data atoms by transferring their motional entropy to the electronic states of ancilla atoms. We observe a marked reduction in the atomic temperature of data atoms. These tools offer a pathway to continuous operation in tweezer clocks and complement recent developments in continuous reloading experiments.
Keywords
Cite
@article{arxiv.2603.21643,
title = {Gate-based Readout and Cooling of Neutral Atoms},
author = {Richard Bing-Shiun Tsai and Lewis R. B. Picard and Xiangkai Sun and Yuan Le and Kon H. Leung and Manuel Endres},
journal= {arXiv preprint arXiv:2603.21643},
year = {2026}
}
Comments
9+6 pages, 4+2 figures