Temporally ultralong biphotons with a linewidth of 50 kHz

Author:

Wang Yu-Sheng1,Li Kai-Bo1,Chang Chao-Feng1,Lin Tan-Wen1,Li Jian-Qing1,Hsiao Shih-Si1,Chen Jia-Mou1,Lai Yi-Hua1ORCID,Chen Ying-Cheng23ORCID,Chen Yong-Fan34ORCID,Chuu Chih-Sung13ORCID,Yu Ite A.13ORCID

Affiliation:

1. Department of Physics, National Tsing Hua University, Hsinchu 30013, Taiwan

2. Institute of Atomic and Molecular Sciences, Academia Sinica, Taipei 10617, Taiwan

3. Center for Quantum Technology, Hsinchu 30013, Taiwan

4. Department of Physics, National Cheng Kung University, Tainan 70101, Taiwan

Abstract

We report the generation of biphotons, with a temporal full width at the half maximum (FWHM) of 13.4 ± 0.3  µs and a spectral FWHM of 50 ± 1 kHz, via the process of spontaneous four-wave mixing with laser-cooled atoms. The temporal width is the longest, and the spectral linewidth is the narrowest to date. This is also the first biphoton result that obtains a linewidth below 100 kHz, reaching a new milestone. The very long biphoton wave packet has a signal-to-background ratio of 3.4, which violates the Cauchy–Schwarz inequality for classical light by 4.8 folds. Furthermore, we demonstrated a highly tunable-linewidth biphoton source and showed that while the biphoton source’s temporal and spectral width were controllably varied by about 24 folds, its generation rate only changed by less than 15%. A spectral brightness or generation rate per pump power per linewidth of 1.2× 106 pairs/(s mW MHz) was achieved at the temporal width of 13.4  µs. The above results were made possible by the low decoherence rate and high optical depth of the experimental system, as well as a novel scheme of classical fields’ and biphotons’ propagation directions in the experiment. This work has demonstrated a high-efficiency ultranarrow-linewidth biphoton source and has made substantial advancements in quantum technology utilizing heralded single photons.

Funder

National Science and Technology Council, Taiwan

Publisher

AIP Publishing

Subject

Computer Networks and Communications,Atomic and Molecular Physics, and Optics

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