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Energy transfer and correlations in cavity-embedded donor-acceptor configurations

机译:腔内嵌入的供体-受体结构中的能量转移和相关性

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摘要

The rate of energy transfer in donor-acceptor systems can be manipulated via the common interaction with the confined electromagnetic modes of a micro-cavity. We analyze the competition between the near-field short range dipole-dipole energy exchange processes and the cavity mediated long-range interactions in a simplified model consisting of effective two-level quantum emitters that could be relevant for molecules in experiments under cryogenic conditions. We find that free-space collective incoherent interactions, typically associated with sub- and superradiance, can modify the traditional resonant energy transfer scaling with distance. The same holds true for cavity-mediated collective incoherent interactions in a weak-coupling but strong-cooperativity regime. In the strong coupling regime, we elucidate the effect of pumping into cavity polaritons and analytically identify an optimal energy flow regime characterized by equal donor/acceptor Hopfield coefficients in the middle polariton. Finally we quantify the build-up of quantum correlations in the donor-acceptor system via the two-qubit concurrence as a measure of entanglement.
机译:供体-受体系统中的能量转移速率可以通过与微腔体的受限电磁模式的共同相互作用来控制。我们在简化模型中分析了近场短程偶极-偶极能量交换过程与腔介导的长程相互作用之间的竞争,该模型由有效的两能级量子发射器组成,该分子可能与低温条件下的实验有关。我们发现,通常与亚辐射和超辐射相关的自由空间集体非相干相互作用可以随着距离改变传统的共振能量传递比例。对于在弱耦合但强合作机制下的腔介导的集体非相干相互作用也是如此。在强耦合机制中,我们阐明了泵浦到腔极化子中的作用,并分析地确定了以中极化子中相等的供体/受体Hopfield系数为特征的最佳能量流态。最后,我们通过两个量子位并发来量化供体-受体系统中量子相关性的建立,以作为纠缠的量度。

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