High-efficiency loading of 2,400 Ytterbium atoms in optical tweezer arrays

ORAL

Abstract

Neutral atom arrays have emerged as a powerful platform for quantum computation, simulation, and metrology. Among them, alkaline-earth-like atoms exhibit distinct advantages, including long coherence time and high-fidelity Rydberg gates. However, their scalability has lagged behind that of the alkali atoms. Here, we report 2,400 Ytterbium-174 atoms trapped in an optical tweezer array with enhanced single-atom loading efficiency of 83.5(1)%. Notably, the loading efficiency is largely maintained for array sizes ranging from dozens to thousands, exhibiting excellent scalability. We demonstrate the broad applicability of the enhanced loading method by showing that the enhancement exists robustly across a range of interatomic potentials, suggesting its utility for other atomic species. To establish the capability of the 174Yb arrays toward universal quantum computation, we propose to encode the qubit in the ground-clock state manifold and estimate a 99.9% two-qubit gate fidelity with experimentally feasible parameters. Our work advances the prospects for realizing large-scale quantum computers using alkaline-earth-like atoms.

*This work was supported by the Quantum Science and Technology National Science and Technology Major Project under grant number 2024ZD0301600, the National Natural Science Foundation of China under grant number 12474479 and 12504573, the Beijing Natural Science Foundation under grant number F251004, the China Postdoctoral Science Foundation under Grant Number 2024M760064 and 2025T180934, the Postdoctoral Fellowship Program of CPSF under Grant Number GZB20250790.

Publication: arXiv:2512.19795

Presenters

  • Jiawen Zhu

    • Peking University

Authors

  • Jiawen Zhu

    • Peking University
  • Changfeng Chen

    • Peking University
  • Zhou Li

    • Peking University
  • Xiangru Xie

    • Peking University
  • Chenyang Jiang

    • Peking University
  • Zhuoli Ding

    • Peking University
  • Fan Wu

    • Peking University
  • Fan Yang

    • Peking University
  • Guoqing Wang

    • Massachusetts Institute of Technology
  • Qihuang Gong

    • Peking University
  • Peng Zhang

    • Renmin University of China
  • Sheng Zhang

    • Peking University
  • Pai Peng

    • Peking University