Sample-half-inserted quantum interferometer
Abstract
Quantum technologies have been widely recognized as unprecedented opportunities for ultra-high precision metrology. As a celebrated example in modern quantum optics, the Hong-Ou-Mandel (HOM) interferometer is well-known for enabling temporal resolutions on the attosecond scale. However, the relatively low Fisher information per trial in ordinary HOM measurements typically necessitates tens of thousands of repetitions to achieve such precision. Here, we propose and demonstrate a sample-half-inserted HOM (SHOM) interferometer, which enhances the Fisher information by five orders of magnitude in a single interference event. By introducing an asymmetric photon-sample interaction, the SHOM configuration produces a distinctive dip-bump-dip interference structure, converting what was previously viewed as an artifact into a helpful metrological resource. Experimentally, we measured the optical path difference with an average precision of 4.09 nm (13.63 as) and an average accuracy of 1.22 nm (4.07 as) using photons. Our results establish SHOM interferometry as an efficient phase-insensitive approach, not only paving the way toward practical quantum-enhanced thickness measurement for transparent materials, but also serving as an elegant strategy to improve the performance of various quantum devices.
Cite
@article{arxiv.2608.03622,
title = {Sample-half-inserted quantum interferometer},
author = {Wei Li and Tao Xie and Yu-Hang Luo and Kang Zheng and Meiyu Peng and Hui Yang and Chunling Ding and Chen-Zhi Yuan and Omar S. Magana-Loaiza and Keyu Xia and Ryosuke Shimizu and Hui Jing and Chenglong You and Rui-Bo Jin},
journal= {arXiv preprint arXiv:2608.03622},
year = {2026}
}
Comments
7 pages, 3 figures