State Transfer in Noisy Modular Quantum Networks

IF 4.3 Q1 OPTICS Advanced quantum technologies Pub Date : 2024-10-04 DOI:10.1002/qute.202400316
Markku Hahto, Jyrki Piilo, Johannes Nokkala
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Abstract

Quantum state transfer is the act of transferring quantum information from one system in a quantum network to another without physically transporting carriers of quantum information, but instead engineering a Hamiltonian such that the state of the sender is transferred to the receiver through the dynamics of the whole network. A generalization of quantum state transfer called quantum routing concerns simultaneous transfers between multiple pairs in a quantum network, imposing limitations on its structure. This study considers transfer of Gaussian states over noisy quantum networks with modular structure, which have been identified as a suitable platform for quantum routing. Two noise models are compared, affecting either the network topology or the network constituents, studying their effects on both the transfer fidelities and the network properties. The two models are found to affect different features of the network allowing for the identification and quantification of the noise. These features are then used as a guide toward different strategies for the compensation of the noise, and to examine how the compensation strategies perform. The results show that in general, modular networks are more robust to noise than monolithic ones.

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噪声模量子网络中的状态转移
量子态传输是将量子信息从量子网络中的一个系统传输到另一个系统,而不需要物理传输量子信息的载体,而是通过整个网络的动态将发送者的状态传输到接收者。量子态传输的一种推广称为量子路由,涉及量子网络中多个对之间的同时传输,对其结构施加限制。本文研究了具有模块化结构的噪声量子网络上高斯态的传输,该网络已被确定为量子路由的合适平台。比较了两种影响网络拓扑结构和网络组成的噪声模型,研究了它们对传输保真度和网络性能的影响。发现这两种模型影响网络的不同特征,从而可以识别和量化噪声。然后将这些特征用作对噪声补偿的不同策略的指导,并检查补偿策略的执行情况。结果表明,一般来说,模块化网络比单片网络对噪声的鲁棒性更强。
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