Two-photon comb with wavelength conversion and 20-km distribution for quantum communication
Kazuya Niizeki (1), Daisuke Yoshida (1), Ko Ito (1), Ippei Nakamura, (1,2), Nobuyuki Takei (3), Kotaro Okamura (4), Ming-Yang Zheng (5), Xiu-Ping, Xie (5), Tomoyuki Horikiri (1,6) ((1) Yokohama National University, (2), KISTEC, (3) Kyoto University, (4) Kanagawa University

TL;DR
This paper demonstrates a versatile telecom-band entanglement source with high fidelity and long-distance fiber distribution, advancing quantum internet capabilities despite fiber losses.
Contribution
It introduces a narrow-linewidth, high-fidelity entanglement source suitable for fiber-based quantum communication over 20 km, compatible with quantum memory and multiplexing.
Findings
Entanglement fidelity exceeds 95%
Successful 20-km fiber distribution of entangled photons
Effective two-photon correlation observed after transmission
Abstract
Quantum computing and quantum communication, have been greatly developed in recent years and expected to contribute to quantum internet technologies, including cloud quantum computing and unconditionally secure communication. However, long-distance quantum communication is challenging mainly because of optical fiber losses; quantum repeaters are indispensable for fiber-based transmission because unknown quantum states cannot be amplified with certainty. In this study, we demonstrate a versatile entanglement source in the telecom band for fiber-based quantum internet, which has a narrow linewidth of sub-MHz range, entanglement fidelity of more than 95%, and Bell-state generation even with frequency multimode. Furthermore, after a total distribution length of 20-km in fiber, two-photon correlation is observed with an easily identifiable normalized correlation coefficient, despite the…
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