论文标题

部分可观测时空混沌系统的无模型预测

Enhancement of Quantum Excitation Transport by Photonic Nonreciprocity

论文作者

Gangaraj, S. Ali Hassani, Ying, Lei, Monticone, Francesco, Yu, Zongfu

论文摘要

通过非肾上腺光子介质通过非量化光子介质之间的两个两级发射器(例如原子)之间的增强相互作用可以对从量子信息科学到生物学检测的广泛领域有益。在这里,我们提供了详细的分析,内容涉及为什么非邻次光子光子介导的相互作用提高了原子间激发运输效率。我们研究了一个由嵌入在通用光子环境中的两个两级发射器组成的系统。通过比较对称和不对称的光子交换,我们在分析上表明,破坏电磁互惠使合作的衰减速率即使在翻译不变的同质系统中也可以超过自发衰减率。这意味着,发射极的激发必须主要腐烂到其他发射极中,而不是泄漏并散布到储层光子模式中。我们还提供了一个示例,其中两级发射器的链通过等离子波导的相互模式主要相互作用。然后,我们表明,通过将直流电流通过等离子材料驱动DC电流在这种系统中破坏互惠可以大大增加一个从一个发射极到另一个发射极的光子发射的概率,从而导致量子能量传输效率的增强顺序提高。

Enhanced interaction between two two-level emitters (e.g., atoms) by nonreciprocal photonic media can be of benefit to broad areas, from quantum information science to biological detection. Here we provide a detailed analysis on why nonreciprocal photon-mediated interaction enhances inter-atomic excitation transport efficiency. We investigate a system consisting of two two-level emitters embedded in a generic photonic environment. By comparing symmetric and asymmetric photon-exchange, we analytically show that breaking electromagnetic reciprocity makes it possible for the cooperative decay rate to exceed the spontaneous decay rate even in a translation-invariant homogeneous system. This means that the excitation of an emitter must decay mostly into the other emitter rather than leaking and dissipating into the reservoir photonic modes. We also provide an example where a chain of two-level emitters dominantly interact via the reciprocal modes of a plasmonic waveguide. We then show that breaking reciprocity in such a system via driving a DC current through the plasmonic material can drastically increase the probability of photon emission from one emitter to another, leading to an order-of-magnitude enhancement in quantum energy-transport efficiency.

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