Generation of Near-ideal Indistinguishable Two-Photon State by Incoherent Light

Fuente: arXiv
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Autori principali: Song, Yue-Wei, Gao, Ming-Yuan, Guo, Zhi-Cheng, Zhou, Zheng-He, Li, Yin-Hai, Guo, Guang-Can, Zhou, Zhi-Yuan, Shi, Bao-Sen
Natura: Preprint
Pubblicazione: 2025
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author Song, Yue-Wei
Gao, Ming-Yuan
Guo, Zhi-Cheng
Zhou, Zheng-He
Li, Yin-Hai
Guo, Guang-Can
Zhou, Zhi-Yuan
Shi, Bao-Sen
author_facet Song, Yue-Wei
Gao, Ming-Yuan
Guo, Zhi-Cheng
Zhou, Zheng-He
Li, Yin-Hai
Guo, Guang-Can
Zhou, Zhi-Yuan
Shi, Bao-Sen
contents High-quality quantum states lie at the heart of advanced quantum information processing. The degree of photon indistinguishability is critical for applications from photonic quantum computation to precision metrology. The two-photon Hong-Ou-Mandel (HOM) interference effect provides a rigorous quantification method, with its visibility serving as the ultimate benchmark for source quality. Generally, the coherent pumping is widely regarded as indispensable for the preparation of quantum sources. As a result, incoherent light sources have seen limited applications in the current quantum technologies. In this work, we generate an indistinguishable two-photon state by incoherent light generated by frequency doubling of Amplified Spontaneous Emission light. The theoretical analysis indicates that phase randomization of the pumping does not affect the coincidence visibility in two-photon intensity interference. Moreover, temporal incoherence further enhances the symmetry of the generated spectrum in second-harmonic generation. In the experiment, the incoherently pumped photon sources exhibit a heralding efficiency of approximately 60\% and a coincidence-to-accidental ratio exceeding 15000. The observed HOM interference fringes show the visibility of 99.1\% without any spectrum filtering, confirming the near-ideal indistinguishability of the photons. Our study reveals the role of temporal coherence in second-order nonlinear interactions, it provide a potential approach to use an easily accessible incoherent light for engineering high-quality quantum sources.
format Preprint
id arxiv_https___arxiv_org_abs_2507_12066
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Generation of Near-ideal Indistinguishable Two-Photon State by Incoherent Light
Song, Yue-Wei
Gao, Ming-Yuan
Guo, Zhi-Cheng
Zhou, Zheng-He
Li, Yin-Hai
Guo, Guang-Can
Zhou, Zhi-Yuan
Shi, Bao-Sen
Quantum Physics
Optics
High-quality quantum states lie at the heart of advanced quantum information processing. The degree of photon indistinguishability is critical for applications from photonic quantum computation to precision metrology. The two-photon Hong-Ou-Mandel (HOM) interference effect provides a rigorous quantification method, with its visibility serving as the ultimate benchmark for source quality. Generally, the coherent pumping is widely regarded as indispensable for the preparation of quantum sources. As a result, incoherent light sources have seen limited applications in the current quantum technologies. In this work, we generate an indistinguishable two-photon state by incoherent light generated by frequency doubling of Amplified Spontaneous Emission light. The theoretical analysis indicates that phase randomization of the pumping does not affect the coincidence visibility in two-photon intensity interference. Moreover, temporal incoherence further enhances the symmetry of the generated spectrum in second-harmonic generation. In the experiment, the incoherently pumped photon sources exhibit a heralding efficiency of approximately 60\% and a coincidence-to-accidental ratio exceeding 15000. The observed HOM interference fringes show the visibility of 99.1\% without any spectrum filtering, confirming the near-ideal indistinguishability of the photons. Our study reveals the role of temporal coherence in second-order nonlinear interactions, it provide a potential approach to use an easily accessible incoherent light for engineering high-quality quantum sources.
title Generation of Near-ideal Indistinguishable Two-Photon State by Incoherent Light
topic Quantum Physics
Optics
url https://arxiv.org/abs/2507.12066