TY - JOUR
T1 - Time-bin encoded quantum key distribution over 120 km with a telecom quantum dot source
AU - Wang, Jipeng
AU - Hanel, Joscha
AU - Jiang, Zenghui
AU - Joos, Raphael
AU - Jetter, Michael
AU - Rugeramigabo, Eddy Patrick
AU - Portalupi, Simone Luca
AU - Michler, Peter
AU - Cao, Xiao Yu
AU - Yin, Hua Lei
AU - Shan, Lei
AU - Yang, Jingzhong
AU - Zopf, Michael
AU - Ding, Fei
N1 - Publisher Copyright:
© The Author(s) 2026.
PY - 2026/2/25
Y1 - 2026/2/25
N2 - Quantum key distribution (QKD) with deterministic single photon sources has been demonstrated over intercity fiber and free-space channels. The previous implementations relied mainly on polarization encoding schemes, which are susceptible to birefringence, polarization-mode dispersion and polarization-dependent loss in practical fiber networks. In contrast, time-bin encoding offers inherent robustness and has been widely adopted in mature QKD systems using weak coherent laser pulses. However, its feasibility in conjunction with a deterministic single-photon source has not yet been experimentally demonstrated. In this work, we construct a time-bin encoded QKD system employing a high-brightness quantum dot (QD) single-photon source operating at telecom wavelength. Our proof-of-concept experiment successfully demonstrates the possibility of secure key distribution over fiber link of 120 km, while maintaining extraordinary long-term stability over 6 h of continuous operation, that is highest secure key rate among the time-bin QKDs based on single-photon sources. This work provides the first experimental validation of integrating a QD single-photon source with time-bin encoding in a telecom-band QKD system. This development signifies a substantial advancement in the establishment of a robust and scalable QKD network based on solid-state single-photon technology.
AB - Quantum key distribution (QKD) with deterministic single photon sources has been demonstrated over intercity fiber and free-space channels. The previous implementations relied mainly on polarization encoding schemes, which are susceptible to birefringence, polarization-mode dispersion and polarization-dependent loss in practical fiber networks. In contrast, time-bin encoding offers inherent robustness and has been widely adopted in mature QKD systems using weak coherent laser pulses. However, its feasibility in conjunction with a deterministic single-photon source has not yet been experimentally demonstrated. In this work, we construct a time-bin encoded QKD system employing a high-brightness quantum dot (QD) single-photon source operating at telecom wavelength. Our proof-of-concept experiment successfully demonstrates the possibility of secure key distribution over fiber link of 120 km, while maintaining extraordinary long-term stability over 6 h of continuous operation, that is highest secure key rate among the time-bin QKDs based on single-photon sources. This work provides the first experimental validation of integrating a QD single-photon source with time-bin encoding in a telecom-band QKD system. This development signifies a substantial advancement in the establishment of a robust and scalable QKD network based on solid-state single-photon technology.
UR - http://www.scopus.com/inward/record.url?scp=105031124651&partnerID=8YFLogxK
U2 - 10.1038/s41377-026-02205-9
DO - 10.1038/s41377-026-02205-9
M3 - Article
AN - SCOPUS:105031124651
SN - 2095-5545
VL - 15
JO - Light: Science and Applications
JF - Light: Science and Applications
IS - 1
M1 - 126
ER -