English

Improving the Precision of Optical Metrology by Detecting Fewer Photons

Quantum Physics 2021-03-24 v1

Abstract

In optical metrological protocols to measure physical quantities, it is, in principle, always beneficial to increase photon number to improve measurement precision. However, practical constraints prevent arbitrary increase of n due to the imperfections of a practical detector, especially when the detector response is dominated by saturation effect. In this work, we show that a modified weak measurement protocol, namely, biased weak measurement significantly improves the precision of optical metrology in the presence of saturation effect. This method detects an ultra-small fraction of photons while maintains considerable amount of metrological information. The biased pre-coupling leads to an additional reduction of photons in the post-selection and generates an extinction point in the spectrum distribution, which is extremely sensitive to the estimated parameter and difficult to be saturated. Therefore, the Fisher information can be persistently enhanced by increasing the photon number. In our magnetic-sensing experiment, biased weak measurement achieves precision approximately one order of magnitude better than those of previously used methods. The proposed method can be applied in various optical measurement schemes to circumvent detector saturation effect with low-cost apparatuses.

Keywords

Cite

@article{arxiv.2103.12373,
  title  = {Improving the Precision of Optical Metrology by Detecting Fewer Photons},
  author = {Peng Yin and Wen-Hao Zhang and Liang Xu and Ze-Gang Liu and Wei-Feng Zhuang and Lei Chen and Ming Gong and Yu Ma and Xing-Xiang Peng and Gong-Chu Li and Jin-Shi Xu and Zong-Quan Zhou and Lijian Zhang and Geng Chen and Chuan-Feng Li and Guang-Can Guo},
  journal= {arXiv preprint arXiv:2103.12373},
  year   = {2021}
}