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Relations between environmental noise and electronic coupling for optimal exciton transfer in one- and two-dimensional homogeneous and inhomogeneous quantum systems

机译:一维和二维均质和非均质量子系统中最佳激子传递的环境噪声与电子耦合之间的关系

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摘要

Recent studies have indicated that environmental noise may increase energy-transfer efficiency in quantum systems. For homogeneous networks of chromophores previous studies have primarily considered excitonic transport in one-dimensional (linear) networks. In our study, we expand previous research to a two-dimensional fully coupled topology of chromophore molecules. We demonstrate that not only does an optimal dephasing rate exist in both one-and two-dimensional networks but also that it increases in magnitude with increasing coupling strength between chromophores. Optimal transport occurs when the noise quenches the entanglement between local modes that prevent the exciton from moving efficiently to the target site. We find that these results are insensitive to minor site defects such as those found in realistic systems. We contrast these findings to systems with a high degree of inhomogeneity, in which the optimal dephasing rate is largely set by the system topology and does not vary significantly with respect to coupling strength. Our findings have potential applications to systems such as quantum dot arrays and carbon nanotube structures. (C) 2014 AIP Publishing LLC.
机译:最近的研究表明,环境噪声可能会提高量子系统中的能量传输效率。对于生色团的均质网络,先前的研究主要考虑了一维(线性)网络中的激子传输。在我们的研究中,我们将先前的研究扩展到发色团分子的二维完全耦合拓扑。我们证明,不仅一维和二维网络中都存在最佳的移相速率,而且随着生色团之间耦合强度的增加,移相的幅度也随之增加。当噪声消除局部模式之间的纠缠,从而阻止激子有效地移动到目标位置时,就会发生最佳传输。我们发现这些结果对较小的站点缺陷(例如在实际系统中发现的缺陷)不敏感。我们将这些发现与具有高度不均匀性的系统进行对比,在该系统中,最佳相移速率主要由系统拓扑设置,并且在耦合强度方面没有显着变化。我们的发现对量子点阵列和碳纳米管结构等系统具有潜在的应用。 (C)2014 AIP Publishing LLC。

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