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Trapped-ion quantum simulation of excitation transport: Disordered, noisy, and long-range connected quantum networks

机译:激励传输的陷阱离子量子仿真:无序,嘈杂,远程连续的量子网络

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摘要

The transport of excitations governs fundamental properties of matter. Particularly rich physics emerges in the interplay between disorder and environmental noise, even in small systems such as photosynthetic biomolecules. Counterintuitively, noise can enhance coherent quantum transport, which has been proposed as a mechanism behind the high transport efficiencies observed in photosynthetic complexes. This effect has been called “environment-assisted quantum transport”. Here, we propose a quantum simulation of the excitation transport in an open quantum network, taking advantage of the high controllability of current trapped-ion experiments. Our scheme allows for the controlled study of various different aspects of the excitation transfer, ranging from the influence of static disorder and interaction range, over the effect of Markovian and non-Markovian dephasing, to the impact of a continuous insertion of excitations. Our paper discusses experimental error sources and realistic parameters, showing that it can be implemented in state-of-the-art ion-chain experiments.
机译:激发的运输管理物质的基本属性。即使在诸如光合生物分子等小型系统中,疾病和环境噪声的相互作用,尤其是富含物理的物理。逆行地,噪声可以增强相干量子传输,这已经提出作为在光合复合物中观察到的高运输效率背后的机制。这种效果被称为“环境辅助量子运输”。在这里,我们提出了一种Quantum模拟开放量子网络中的激发传输,利用电流捕获离子实验的高可控性。我们的方案允许对激发转移的各种不同方面的对照研究,从静态紊乱和相互作用范围的影响范围,超越马尔维亚和非马尔可夫脱离的影响,对连续插入激励的影响。我们的论文讨论了实验误差来源和现实参数,表明它可以在最先进的离子链实验中实现。

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