Experimental Analysis of Channel Interleaving in Photon-Counting Communication over a 12-km Terrestrial Free-Space Optical Link

In lunar and deep-space optical communication uplinks, atmospheric turbulence can induce temporally correlated fades in photon-limited free-space optical (FSO) channels. These fades can lead to burst errors and consequently degrade the reliability of coded transmission. In this work, we conducted a 12 km urban horizontal free-space PPM communication experiment using a room-temperature single-photon detector. The acquired photon-counting data were used to characterize the scintillation and fade-duration statistics of the atmospheric channel. We further compared the communication performance of different channel interleaving schemes under the same link conditions. At a data rate of 25.8 Mbps, the Matrix-128 scheme achieved a receiver sensitivity of 0.86 detected photons per bit at the lowest operating point with zero observed bit errors, corresponding to a 2.64 dB sensitivity improvement over the non-interleaved scheme. The experimental results show that channel interleaving effectively disperses turbulence-induced burst errors and improves the receiver sensitivity of the high-speed photon-counting PPM system. This experiment provides field experimental evidence for evaluating the performance of channel interleaving and selecting interleaving parameters for uplink photon-counting communication under realistic atmospheric turbulence conditions.

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Publication Details

Journal
Photonics
Published
2026-09-30
DOI
https://doi.org/10.3390/photonics13100929
Primary Topic
Optical Wireless Communication Technologies
Type
article
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Experimental Analysis of Channel Interleaving in Photon-Counting Communication over a 12-km Terrestrial Free-Space Optical Link

Chengxiang Tu, Jun Huang, Liang Zhang, Xintong Guo et al.
Photonics
Optical Wireless Communication Technologies
article

Experimental Analysis of Channel Interleaving in Photon-Counting Communication over a 12-km Terrestrial Free-Space Optical Link

Chengxiang Tu, Jun Huang, Liang Zhang, Xintong Guo, Yi-Xiang Wang, Xin Yu, Jincai Wu, YunPeng Liu, Yuefeng Li, Xingyue Wang, Zhenyu Li, Han Bao
article en

Abstract

In lunar and deep-space optical communication uplinks, atmospheric turbulence can induce temporally correlated fades in photon-limited free-space optical (FSO) channels. These fades can lead to burst errors and consequently degrade the reliability of coded transmission. In this work, we conducted a 12 km urban horizontal free-space PPM communication experiment using a room-temperature single-photon detector. The acquired photon-counting data were used to characterize the scintillation and fade-duration statistics of the atmospheric channel. We further compared the communication performance of different channel interleaving schemes under the same link conditions. At a data rate of 25.8 Mbps, the Matrix-128 scheme achieved a receiver sensitivity of 0.86 detected photons per bit at the lowest operating point with zero observed bit errors, corresponding to a 2.64 dB sensitivity improvement over the non-interleaved scheme. The experimental results show that channel interleaving effectively disperses turbulence-induced burst errors and improves the receiver sensitivity of the high-speed photon-counting PPM system. This experiment provides field experimental evidence for evaluating the performance of channel interleaving and selecting interleaving parameters for uplink photon-counting communication under realistic atmospheric turbulence conditions.

PhotonicsVol. 13(10)
Chinese Academy of Sciences (CN), Shanghai Institute of Technical Physics (CN), University of Chinese Academy of Sciences (CN), Shanghai Research Center for Quantum Sciences (CN)
Sustainable cities and communities
Openalex Percentile: Top 22%
Optical Wireless Communication Technologies
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