Quantum enhanced beam tracking surpassing the Heisenberg uncertainty limit
Abstract
Determining a beam's full trajectory requires tracking both its position and momentum (angular) information. However, the product of position and momentum uncertainty in a simultaneous measurement of the two parameters is bound by the Heisenberg uncertainty limit (HUL). In this work, we present a proof-of-principle demonstration of a quantum-enhanced beam tracking technique, leveraging the inherent position and momentum entanglement between photons produced via spontaneous parametric down-conversion (SPDC). We show that quantum entanglement can be exploited to achieve a beam tracking accuracy beyond the HUL in a simultaneous measurement. Moreover, with existing detection technologies, it is already possible to achieve near real-time beam tracking capabilities at the single-photon level. The technique also exhibits high resilience to background influences, with negligible reduction in tracking accuracy even when subjected to a disruptive beam that is significantly brighter than SPDC.
Keywords
Cite
@article{arxiv.2501.14104,
title = {Quantum enhanced beam tracking surpassing the Heisenberg uncertainty limit},
author = {Yingwen Zhang and Duncan England and Noah Lupu-Gladstein and Frederic Bouchard and Guillaume Thekkadath and Philip J. Bustard and Ebrahim Karimi and Benjamin Sussman},
journal= {arXiv preprint arXiv:2501.14104},
year = {2025}
}
Comments
7 pages, 5 figures