English

Entropic costs of extracting classical ticks from a quantum clock

Quantum Physics 2025-11-18 v2 Mesoscale and Nanoscale Physics Statistical Mechanics

Abstract

We experimentally realize a quantum clock by using a charge sensor to count charges tunneling through a double quantum dot (DQD). Individual tunneling events are used as the clock's ticks. We quantify the clock's precision while measuring the power dissipated by the DQD and, separately, the charge sensor in both direct-current and radio-frequency readout modes. This allows us to probe the thermodynamic cost of creating ticks microscopically and recording them macroscopically. Our experiment is the first to explore the interplay between the entropy produced by a microscopic clockwork and its macroscopic measurement apparatus. We show that the latter contribution not only dwarfs the former but also unlocks greatly increased precision, because the measurement record can be exploited to optimally estimate time even when the DQD is at equilibrium. Our results suggest that the entropy produced by the amplification and measurement of a clock's ticks, which has often been ignored in the literature, is the most important and fundamental thermodynamic cost of timekeeping at the quantum scale.

Cite

@article{arxiv.2502.00096,
  title  = {Entropic costs of extracting classical ticks from a quantum clock},
  author = {Vivek Wadhia and Florian Meier and Federico Fedele and Ralph Silva and Nuriya Nurgalieva and David L. Craig and Daniel Jirovec and Jaime Saez-Mollejo and Andrea Ballabio and Daniel Chrastina and Giovanni Isella and Marcus Huber and Mark T. Mitchison and Paul Erker and Natalia Ares},
  journal= {arXiv preprint arXiv:2502.00096},
  year   = {2025}
}

Comments

9+16 pages, 10 figures

R2 v1 2026-06-28T21:28:28.881Z