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Deterministic quantum state transfer between remote atoms with photon-number superposition states

机译:具有光子数叠加状态的远程原子之间的确定性量子状态转移

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We propose a protocol for quantum networking based on deterministic quantum state transfer between distant memory nodes using photon-number superposition states (PNSS). In the suggested scheme, the quantum nodes are single atoms confined in high-finesse optical cavities linked by photonic channels. The quantum information written in a superposition of atomic Zeeman states of sending system is faithfully mapped through cavity-assisted Raman scattering onto PNSS of linearly polarized cavity photons. The photons travel to the receiving cavity, where they are coherently absorbed with unit probability creating the same superposition state of the second atom, thus ensuring high-fidelity transfer between distant nodes. We develop this approach at first for photonic qubit and show that this superposition state is no less reliably protected against the propagation losses compared to the single-photon polarization states, whereas the limitation associated with the delivery of more than one photon does not affect the process fidelity. Then, by preserving the advantages of qubits, we extend the developed technique to the case of state transfer by photonic qutrit, which evidently possesses more information capacity. This reliable and efficient scheme promises also a successful distribution of entanglement over long distances in quantum networks.
机译:我们提出了基于使用光子数叠加态(PNSS)遥远的记忆节点之间具有确定性量子状态转移为量子网络的协议。在建议的方案中,量子节点处于由光子通道连接的高精细度的光腔局限于单一原子。写在发送系统的原子塞曼状态的重叠的量子信息通过空腔辅助拉曼散射忠实映射到PNSS线性偏振腔光子。光子行进到接收腔,在那里它们被相干与单元概率创建所述第二原子的相同的叠加状态,从而保证远距离节点之间高保真转移吸收。我们开发在第一光子量子位和表明该叠加态抵靠传播损耗不低于可靠地保护相比,单光子的极化状态这种方法,而具有多于一个光子的递送相关联的限制不影响该过程保真度。然后,通过保持量子位的优势,我们的开发技术,扩大到由光子qutrit,这显然拥有更多的信息容量状态转移的情况。这种可靠,高效的方案还承诺纠缠在量子网络中长距离一个成功的销售。

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