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Four-wave mixing of topological edge plasmons in graphene metasurfaces

机译:石墨烯元胶中拓扑边缘等离子体的四波混合

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摘要

We study topologically protected four-wave mixing (FWM) interactions in a plasmonic metasurface consisting of a periodic array of nanoholes in a graphene sheet, which exhibits a wide topological bandgap at terahertz frequencies upon the breaking of time reversal symmetry by a static magnetic field. We demonstrate that due to the significant nonlinearity enhancement and large life time of graphene plasmons in specific configurations, a net gain of FWM interaction of plasmonic edge states located in the topological bandgap can be achieved with a pump power of less than 10 nW. In particular, we find that the effective nonlinear edge-waveguide coefficient is about γ ? 1.1 × 10sup13/sup Wsup?1/sup msup?1/sup, i.e., more than 10 orders of magnitude larger than that of commonly used, highly nonlinear silicon photonic nanowires. These findings could pave a new way for developing ultralow-power-consumption, highly integrated, and robust active photonic systems at deep-subwavelength scale for applications in quantum communications and information processing.
机译:我们研究了由石墨烯片中的周期性纳米孔的周期性阵列组成的拓扑保护的四波混合(FWM)相互作用,其在通过静磁场断开时间反转对称时在太赫兹频率下表现出宽拓扑带隙。我们证明,由于在特定配置中的石墨烯等离子体的显着的非线性增强和大的寿命,可以通过小于10nW的泵浦功率来实现位于拓扑带隙的等离子体边缘状态的FWM相互作用的净增益。特别是,我们发现有效的非线性边缘波导系数约为γ? 1.1×10 13 w Δ1 m Δ1,即超过10个数量级大于常用的高度非线性硅光子纳米线。这些发现可以为在Quantum通信和信息处理中的应用程序处于深度亚波长尺度开发超级功耗,高度集成和鲁棒的有源光子系统的新方法。

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