English

Synthetic five-wave mixing in an integrated microcavity for visible-telecom entanglement generation

Quantum Physics 2022-11-09 v1 Optics

Abstract

Nonlinear optics processes lie at the heart of photonics and quantum optics for their indispensable role in light sources and information processing. During the past decades, the three- and four-wave mixing (χ(2)\chi^{(2)} and χ(3)\chi^{(3)}) effects have been extensively studied, especially in the micro-/nano-structures by which the photon-photon interaction strength is greatly enhanced. So far, the high-order nonlinearity beyond the χ(3)\chi^{(3)} has rarely been studied in dielectric materials due to their weak intrinsic nonlinear susceptibility, even in high-quality microcavities. Here, an effective five-wave mixing process (χ(4)\chi^{(4)}) is synthesized for the first time, by incorporating χ(2)\chi^{(2)} and χ(3)\chi^{(3)} processes in a single microcavity. The coherence of the synthetic χ(4)\chi^{(4)} is verified by generating time-energy entangled visible-telecom photon-pairs, which requires only one drive laser at the telecom waveband. The photon pair generation rate from the synthetic process shows an enhancement factor over 500500 times upon intrinsic five-wave mixing. Our work demonstrates a universal approach of nonlinear synthesis via photonic structure engineering at the mesoscopic scale rather than material engineering, and thus opens a new avenue for realizing high-order optical nonlinearities and exploring novel functional photonic devices.

Keywords

Cite

@article{arxiv.2204.00992,
  title  = {Synthetic five-wave mixing in an integrated microcavity for visible-telecom entanglement generation},
  author = {Jia-Qi Wang and Yuan-Hao Yang and Ming Li and Hai-Qi Zhou and Xin-Biao Xu and Ji-Zhe Zhang and Chun-Hua Dong and Guang-Can Guo and Chang-Ling Zou},
  journal= {arXiv preprint arXiv:2204.00992},
  year   = {2022}
}

Comments

4 figures