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Dynamic control of coherent pulses via destructive interference in graphene under Landau quantization

机译:在Landau量化条件下通过石墨烯中的相消干涉动态控制相干脉冲

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摘要

We analyze the destructive interference in monolayer graphene under Landau quantization in a time-dependent way by using the Bloch-Maxwell formalism. Based on this analysis, we investigate the dynamics control of an infrared probe and a terahertz (THz) switch pulses in graphene. In presence of the THz switch pulse, the destructive interference take places and can be optimized so that the monolayer graphene is completely transparent to the infrared probe pulse. In absence of the THz switch pulse, however, the infrared probe pulse is absorbed due to such a interference does not take place. Furthermore, we provide a clear physics insight of this destructive interference by using the classical dressed-state theory. Conversely, the present model may be rendered either absorbing or transparent to the THz switch pulse. By choosing appropriate wave form of the probe and switch pulses, we show that both infrared probe and THz switch pulses exhibit the steplike transitions between absorption and transparency. Such steplike transitions can be used to devise a versatile quantum interference-based solid-state optical switching with distinct wave-lengths for optical communication devices.
机译:我们使用Bloch-Maxwell形式主义以时间依赖的方式分析了Landau量化下单层石墨烯中的破坏性干扰。基于此分析,我们研究了石墨烯中红外探针和太赫兹(THz)开关脉冲的动力学控制。在存在太赫兹开关脉冲的情况下,会发生破坏性干扰,并且可以对其进行优化,以使单层石墨烯对红外探测脉冲完全透明。但是,在没有太赫兹开关脉冲的情况下,由于不会发生这种干扰,红外探头脉冲会被吸收。此外,我们通过使用经典的穿戴状态理论,提供了关于这种破坏性干涉的清晰的物理见解。相反,可以使本模型对太赫兹开关脉冲具有吸收性或透明性。通过选择合适的探针和开关脉冲波形,我们表明红外探针和太赫兹开关脉冲均表现出吸收和透明之间的阶梯状跃迁。这样的阶梯状跃迁可以用于设计用于光通信设备的具有不同波长的通用的基于量子干涉的固态光学开关。

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