论文标题
实现多部分输入光子量子的确定性来源
Realizing a Deterministic Source of Multipartite-Entangled Photonic Qubits
论文作者
论文摘要
纠缠电磁辐射的来源是量子信息处理中的基石,并为在受控的实验环境中研究量子多体物理学提供了独特的机会。虽然在各种平台上已经生成了多模式纠缠辐射状态,但所有以前的实验都是概率或限制以生成具有中等纠缠长度的特定类型状态。在这里,我们通过将来自受控辅助系统的微波光子顺序排列到波导中,证明了纯光子纠缠状态(例如群集,GHz和W状态)的完全确定性生成。我们在层压板上以最多$ n = 4 $光子模式重建整个量子多体状态,并从过程断层扫描中推断出更大的$ n $的量子状态。我们估计,可本地化的纠缠在大约十个光子量子位上的距离持续超过了以前的确定性方案的表现。
Sources of entangled electromagnetic radiation are a cornerstone in quantum information processing and offer unique opportunities for the study of quantum many-body physics in a controlled experimental setting. While multi-mode entangled states of radiation have been generated in various platforms, all previous experiments are either probabilistic or restricted to generate specific types of states with a moderate entanglement length. Here, we demonstrate the fully deterministic generation of purely photonic entangled states such as the cluster, GHZ, and W state by sequentially emitting microwave photons from a controlled auxiliary system into a waveguide. We tomographically reconstruct the entire quantum many-body state for up to $N=4$ photonic modes and infer the quantum state for even larger $N$ from process tomography. We estimate that localizable entanglement persists over a distance of approximately ten photonic qubits, outperforming any previous deterministic scheme.