Inline-Amplification-Free Time Transfer Utilizing Waveform-Resolved Single-Photon Detection

Fuente: arXiv
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Main Authors: Zhang, Yufei, Chen, Ziyang, Luo, Bin, Guo, Hong
Format: Preprint
Published: 2024
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author Zhang, Yufei
Chen, Ziyang
Luo, Bin
Guo, Hong
author_facet Zhang, Yufei
Chen, Ziyang
Luo, Bin
Guo, Hong
contents High-precision time transfer over a long haul of fiber plays a significant role in many fields. The core method, namely cascading relay nodes for the compensation of signal attenuation and dispersion, is however insufficient to deal with crucial point-to-point transfer scenarios, such as harsh environments with extremely deficient infrastructure and emergency conditions. In long-distance signal transmission without any inline amplifiers, the high loss of the optical fiber link becomes the primary limiting factor, and direct use of traditional photodetectors at the receiving end will bring about a significant drop in the stability of detected signals. Here we propose a waveform-resolved single photon detection technique and experimentally perform tomography on the weak transferred signal with an average photon number of just 0.617 per pulse. By adopting this technique, we achieve the time deviation of 95.68 ps and 192.58 ps at 200 km and 300 km respectively at an averaging time of 1 s, overcoming the technical lower bound induced by traditional photodetectors. This work lays the foundation for through-type time transfer with high precision in those significant inline-amplification-free scenarios.
format Preprint
id arxiv_https___arxiv_org_abs_2412_18503
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Inline-Amplification-Free Time Transfer Utilizing Waveform-Resolved Single-Photon Detection
Zhang, Yufei
Chen, Ziyang
Luo, Bin
Guo, Hong
Optics
Quantum Physics
High-precision time transfer over a long haul of fiber plays a significant role in many fields. The core method, namely cascading relay nodes for the compensation of signal attenuation and dispersion, is however insufficient to deal with crucial point-to-point transfer scenarios, such as harsh environments with extremely deficient infrastructure and emergency conditions. In long-distance signal transmission without any inline amplifiers, the high loss of the optical fiber link becomes the primary limiting factor, and direct use of traditional photodetectors at the receiving end will bring about a significant drop in the stability of detected signals. Here we propose a waveform-resolved single photon detection technique and experimentally perform tomography on the weak transferred signal with an average photon number of just 0.617 per pulse. By adopting this technique, we achieve the time deviation of 95.68 ps and 192.58 ps at 200 km and 300 km respectively at an averaging time of 1 s, overcoming the technical lower bound induced by traditional photodetectors. This work lays the foundation for through-type time transfer with high precision in those significant inline-amplification-free scenarios.
title Inline-Amplification-Free Time Transfer Utilizing Waveform-Resolved Single-Photon Detection
topic Optics
Quantum Physics
url https://arxiv.org/abs/2412.18503