Gubin Mikhail Yu, Leksin Andrey Yu, Shesterikov Alexander V, Prokhorov Alexei V, Volkov Valentyn S
Department of Physics and Applied Mathematics, Vladimir State University named after Alexander and Nikolay Stoletovs (VlSU), Vladimir 600000, Russia.
Center for Photonics and 2D Materials, Moscow Institute of Physics and Technology (MIPT), Dolgoprudny 141700, Russia.
Nanomaterials (Basel). 2020 Jan 9;10(1):122. doi: 10.3390/nano10010122.
Nonlinear plasmonic effects in perspective 2D materials containing low-dimensional quantum emitters can be a basis of a novel technological platform for the fabrication of fast all-plasmonic triggers, transistors, and sensors. This article considers the conditions for achieving a strong coupling between the surface plasmon-polariton (SPP) and quantum emitter taking into account the modification of local density of optical states in graphene waveguide. In the condition of strong coupling, nonlinear interaction between two SPP modes propagating along the graphene waveguide integrated with a stub nanoresonator loaded with core-shell semiconductor nanowires (NWs) was investigated. Using the 2D full-wave electromagnetic simulation, we studied the different transmittance regimes of the stub with NW for both the strong pump SPP and weak signal SPP tuned to interband and intraband transition in NW, respectively. We solved the practical problem of parameters optimization of graphene waveguide and semiconductor nanostructures and found such a regime of NW-SPP interaction that corresponds to the destructive interference with the signal SPP transmittance through the stub less than 7 % in the case for pump SPP to be turned off. In contrast, the turning on the pump SPP leads to a transition to constructive interference in the stub and enhancement of signal SPP transmittance to 93 % . In our model, the effect of plasmonic switching occurs with a rate of 50 GHz at wavelength 8 µ m for signal SPP localized inside 20 nm graphene stub loaded with core-shell InAs/ZnS NW.
含有低维量子发射器的二维材料中的非线性等离子体效应可成为制造快速全等离子体触发器、晶体管和传感器的新型技术平台的基础。本文考虑了在考虑石墨烯波导中光学态局部密度变化的情况下,实现表面等离激元极化激元(SPP)与量子发射器之间强耦合的条件。在强耦合条件下,研究了沿集成有负载核壳半导体纳米线(NW)的短截线纳米谐振器的石墨烯波导传播的两种SPP模式之间的非线性相互作用。利用二维全波电磁模拟,我们分别研究了针对强泵浦SPP和弱信号SPP调谐到NW中的带间和带内跃迁时,带有NW的短截线的不同透射率状态。我们解决了石墨烯波导和半导体纳米结构参数优化的实际问题,并发现了一种NW-SPP相互作用状态,在泵浦SPP关闭的情况下,对应于通过短截线的信号SPP透射率的相消干涉,小于7%。相反,开启泵浦SPP会导致短截线中向相长干涉的转变,并使信号SPP透射率提高到93%。在我们的模型中,对于位于负载核壳InAs/ZnS NW的20 nm石墨烯短截线内的信号SPP,在波长8 µm处,等离子体开关效应以50 GHz的速率发生。