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Showing 1–3 of 3 results for author: Miklos, M

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  1. arXiv:2505.04538  [pdf, other

    quant-ph physics.atom-ph

    Clock precision beyond the Standard Quantum Limit at $10^{-18}$ level

    Authors: Y. A. Yang, Maya Miklos, Yee Ming Tso, Stella Kraus, Joonseok Hur, Jun Ye

    Abstract: Optical atomic clocks with unrivaled precision and accuracy have advanced the frontier of precision measurement science and opened new avenues for exploring fundamental physics. A fundamental limitation on clock precision is the Standard Quantum Limit (SQL), which stems from the uncorrelated projection noise of each atom. State-of-the-art optical lattice clocks interrogate large ensembles to minim… ▽ More

    Submitted 7 May, 2025; originally announced May 2025.

    Comments: 6 pages, 4 figures

    Journal ref: Phys. Rev. Lett. 135, 193202 (2025)

  2. arXiv:2406.03804  [pdf, other

    quant-ph cond-mat.quant-gas gr-qc physics.atom-ph

    Exploring the dynamical interplay between mass-energy equivalence, interactions and entanglement in an optical lattice clock

    Authors: Anjun Chu, Victor J. Martínez-Lahuerta, Maya Miklos, Kyungtae Kim, Peter Zoller, Klemens Hammerer, Jun Ye, Ana Maria Rey

    Abstract: We propose protocols that probe manifestations of the mass-energy equivalence in an optical lattice clock (OLC) interrogated with spin coherent and entangled quantum states. To tune and uniquely distinguish the mass-energy equivalence effects (gravitational redshift and second order Doppler shift) in such a setting, we devise a dressing protocol using an additional nuclear spin state. We then anal… ▽ More

    Submitted 3 March, 2025; v1 submitted 6 June, 2024; originally announced June 2024.

    Comments: 8+8 pages, 5+1 figures

    Journal ref: Phys. Rev. Lett. 134, 093201 (2025)

  3. arXiv:2211.08621  [pdf, other

    quant-ph physics.atom-ph

    Direct comparison of two spin squeezed optical clocks below the quantum projection noise limit

    Authors: John M Robinson, Maya Miklos, Yee Ming Tso, Colin J. Kennedy, Tobias Bothwell, Dhruv Kedar, James K. Thompson, Jun Ye

    Abstract: Building scalable quantum systems that demonstrate genuine performance enhancement based on entanglement is a major scientific goal for fields including computing, networking, simulations, and metrology. The tremendous challenge arises from the fragility of entanglement in increasingly larger sized quantum systems. Optical atomic clocks utilizing a large number of atoms have pushed the frontier of… ▽ More

    Submitted 16 November, 2022; v1 submitted 15 November, 2022; originally announced November 2022.

    Comments: 12 pages, 6 figures