English

Counter-propagating Entangled Photon Pairs from a Monolayer

Quantum Physics 2025-08-12 v1 Optics

Abstract

Non-phase-matched spontaneous parametric down-conversion (SPDC) in atomically thin materials provides new degrees of freedom and enhanced quantum information capacity compared to conventional phase-matched sources. These systems emerged as promising platforms for quantum computing, communication, and imaging, with the potential to support higher-order nonlinear processes. However, direct observation of photon-pair emission from a monolayer has remained experimentally challenging. In this work, we theoretically modeled SPDC emission across the full angular space from a monolayer GaSe film and experimentally validated the model through measurements of both co- and counter-propagating photon pairs. We demonstrated two-photon quantum correlations in the telecom C-band from the thinnest SPDC source reported to date. The spatially symmetric, broadband emission predicted by theory was confirmed experimentally. Furthermore, we observed high-fidelity Bell states in the counter-propagating configuration, marking the first realization of polarization-entangled photon pairs from a monolayer. Our results revealed the emission characteristics of SPDC in the deeply subwavelength, non-phase-matched regime, and introduced atomically thin, counterpropagating SPDC as a scalable and integrable platform for programmable quantum state generation, extendable via moir\'e superlattice engineering.

Keywords

Cite

@article{arxiv.2508.06860,
  title  = {Counter-propagating Entangled Photon Pairs from a Monolayer},
  author = {Zhuoyuan Lu and Jiri Janousek and Syed M. Assad and Shuyao Qiu and Mayank Joshi and Yecheng Hu and Alex Y Song and Chuanyu Wang and Manuka Suriyage and Jie Zhao and Ping Koy Lam and Yuerui Lu},
  journal= {arXiv preprint arXiv:2508.06860},
  year   = {2025}
}

Comments

23 pages, 3 figures

R2 v1 2026-07-01T04:42:17.466Z