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Deterministic Generation of All-Photonic Quantum Repeaters from Solid-State Emitters

机译:来自固态发射器的全光子量子中继器的确定性产生

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Quantum repeaters are nodes in a quantum communication network that allow reliable transmission of entanglement over large distances. It was recently shown that highly entangled photons in so-called graph states can be used for all-photonic quantum repeaters, which require substantially fewer resources compared to atomic-memory-based repeaters. However, standard approaches to building multiphoton entangled states through pairwise probabilistic entanglement generation severely limit the size of the state that can be created. Here, we present a protocol for the deterministic generation of large photonic repeater states using quantum emitters such as semiconductor quantum dots and defect centers in solids. We show that arbitrarily large repeater states can be generated using only one emitter coupled to a single qubit, potentially reducing the necessary number of photon sources by many orders of magnitude. Our protocol includes a built-in redundancy, which makes it resilient to photon loss.
机译:量子中继器是量子通信网络中的节点,其允许在大距离上可靠地传输缠结。最近显示,在所谓的图形状态中的高度缠结的光子可用于全光子量子中继器,其与基于原子存储器的中继器相比需要基本更少的资源。但是,通过成对概率纠缠生成构建多光子纠缠状态的标准方法严重限制了可以创建状态的大小。这里,我们向使用量子发射器(例如固体)的量子发射器以及固体中的缺陷中心,提出了一种确定的大型光子中继器状态的协议。我们表明,只有一个耦合到单个量子位的发射器可以产生任意大的中继器状态,可能通过许多数量级来减少必要数量的光子源。我们的协议包括内置冗余,这使得它可以适应光子损耗。

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