Approaching the Limit of Quantum Clock Precision
Abstract
Precise and autonomous clocks are of fundamental interest and central importance to both foundational studies and practical applications. Here, we construct a blueprint for a quantum clock governed by time-independent interactions. By carefully-engineered coherent transport in dissipative spin chains, we achieve a scaling exponent at the precision-resolution trade-off fundamental bound, bringing this within reach of physically realistic and experimentally accessible systems. We further introduce a sudden-quench protocol that enables repeated operation through a simple initialization and detachment mechanism. Remarkably, the protocol is robust to imprecise detachment timing, implying that high-precision timekeeping can be achieved even when driven by a clock with much lower precision.
Cite
@article{arxiv.2604.22704,
title = {Approaching the Limit of Quantum Clock Precision},
author = {Chad Nelmes and Emanuel Schwarzhans and Tony Apollaro and Timothy Spiller and Irene D'Amico},
journal= {arXiv preprint arXiv:2604.22704},
year = {2026}
}
Comments
9 pages, 7 figures