Time-resolved correlation engineering in DLCZ Raman photon sources
摘要
Memory-assisted quantum networks require photon sources with controllable temporal and correlation properties. The Duan-Lukin-Cirac-Zoller (DLCZ) protocol provides a platform based on spontaneous Raman scattering in atomic ensembles, but a unified predictive theory connecting control parameters to correlations under realistic propagation and noise conditions remains lacking. Here we present a propagation-inclusive open-system quantum theory that retains write-induced population redistribution while combining Heisenberg-Langevin dynamics with Maxwell-Schr\"odinger propagation. We experimentally validate its key predictions. The theory predicts time-dependent Stokes generation, spin-wave evolution, retrieved anti-Stokes wavepackets, and time-resolved cross-correlations. Experiments confirm robust correlations under retrieval tuning and enhanced correlations for shorter write pulses, consistent with the different scaling of correlated coincidences and accidental backgrounds with the mean spin-wave excitation number. Classically controlled retrieval enables temporal gating and slicing of the anti-Stokes wavepacket, establishing a quantitative framework for correlation engineering in memory-compatible DLCZ photon sources.
引用
@article{arxiv.2608.13091,
title = {Time-resolved correlation engineering in DLCZ Raman photon sources},
author = {Jiun-Shiuan Shiu and Chang-Wei Lin and Chi-Ming Yang and Ite A. Yu and Yong-Fan Chen},
journal= {arXiv preprint arXiv:2608.13091},
year = {2026}
}
备注
17 pages, 10 figures