石墨烯磁光特性调谐共振能量转移

P. Abrantes, G. Bastos, D. Szilard, C. Farina, F. Rosa
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引用次数: 2

摘要

我们研究了在外部磁场的影响下,真空中悬浮石墨烯片附近两个量子发射体之间的共振能量转移(RET)速率。我们在低温和室温下进行了分析,结果表明,由于石墨烯非凡的磁光响应,即使在室温下,也可以对RET进行主动控制和可调性。我们还证明了RET率对外加磁场的微小变化非常敏感,并且可以调到惊人的六个数量级,以获得相当现实的磁场值。此外,我们证明了在一定距离范围内,石墨烯单层支持的磁等离子激元极化子作为RET的主要通道发挥了基本作用。我们的研究结果表明,磁光介质可以将量子发射体之间的能量转移操纵提升到一个全新的水平,并进一步扩大其广泛的应用范围。
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Tuning resonance energy transfer with magneto-optical properties of graphene
We investigate the resonance energy transfer (RET) rate between two quantum emitters near a suspended graphene sheet in vacuum under the influence of an external magnetic field. We perform the analysis for low and room temperatures and show that, due to the extraordinary magneto-optical response of graphene, it allows for an active control and tunability of the RET even in the case of room temperature. We also demonstrate that the RET rate is extremely sensitive to small variations of the applied magnetic field, and can be tuned up to a striking six orders of magnitude for quite realistic values of magnetic field. Moreover, we evidence the fundamental role played by the magnetoplasmon polaritons supported by the graphene monolayer as the dominant channel for the RET within a certain distance range. Our results suggest that magneto-optical media may take the manipulation of energy transfer between quantum emitters to a whole new level, and broaden even more its great spectrum of applications.
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