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Microsecond-Scale High-Survival and Number-Resolved Detection of Ytterbium Atom Arrays

Muzi Falconi, A.
•
Panza, R.
•
Sbernardori, S.
altro
Scazza, F.
2025
  • journal article

Periodico
PHYSICAL REVIEW LETTERS
Abstract
Scalable atom-based quantum platforms for simulation, computing, and metrology require fast high-fidelity, low-loss imaging of individual atoms. Standard fluorescence detection methods rely on continuous cooling, limiting the detection range to one atom and imposing long imaging times that constrain the experimental cycle and midcircuit conditional operations. Here, we demonstrate fast and low-loss single-atom imaging in optical tweezers without active cooling, enabled by the favorable properties of ytterbium. Collecting fluorescence over microsecond timescales, we reach single-atom discrimination fidelities above 99.9% and single-shot survival probabilities above 99.5%. Through interleaved recooling pulses, as short as a few hundred microseconds for atoms in magic traps, we perform tens of consecutive detections with constant atom-retention probability per image - an essential step toward fast atom reuse in tweezer-based processors and clocks. Our scheme does not induce parity projection in multiply occupied traps, enabling number-resolved single-shot detection of several atoms per site. This allows us to study the near-deterministic preparation of single atoms in tweezers driven by blue-detuned light-assisted collisions. Moreover, the near-diffraction-limited spatial resolution of our low-loss imaging enables number-resolved microscopy in dense arrays, opening the way to direct site-occupancy readout in optical lattices for density fluctuation and correlation measurements in quantum simulators.
DOI
10.1103/n3bg-7yw7
WOS
WOS:001619364200013
Archivio
https://hdl.handle.net/11368/3121998
info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-105022158812
https://ricerca.unityfvg.it/handle/11368/3121998
Diritti
closed access
license:copyright editore
license uri:iris.pri02
FVG url
https://arts.units.it/request-item?handle=11368/3121998
Soggetti
  • Cold atoms & matter w...

  • Light-matter interact...

  • Optical lattices & tr...

  • Quantum information w...

  • Quantum simulation

  • Trapped atom

  • Atom & ion cooling

  • Fluorescence

  • Imaging & optical pro...

  • Optical tweezer

  • Photon counting

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