Tunable temporal dynamics of dipole response in graphene-wrapped core–shell nanoparticles

Mingliang Yang, Xinchen Jiang, Alexander S. Shalin, Lei Gao
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Abstract

The investigation on the temporal dynamics of graphene-wrapped core–shell nanoparticles under the illumination of a Gaussian impulse have been carried out. By altering the graphene layers and the aspect ratio of the core–shell structure, we can adjust the resonant modes into typical cases in regime of terahertz. Accordingly, different scenarios for the temporal evolution are detected, which include two kinds of ultrafast oscillation with exponential decay tendency, pure exponential decay, and Gaussian shape, when the pulse duration of the incident pulse is much shorter than, similar to, and much longer than the localized surface plasmon lifetime. To one's interest, when the coupling between two resonant modes exists, one predicts the long-periodic oscillation, whose period is just the difference between the frequencies of the resonant modes. Hence, the intrinsic properties of the ultrafast oscillation can be hardly influenced by the input signals. Further quantitative calculation demonstrate that the periods of the ultrafast oscillations can be tuned by different physical mechanisms, which are, respectively, based on the self-interacting correction of a single resonance and the strong coupling between the resonant modes in frequency domain. Our results may be applicable in the fields of optical sensors, optical information processing, and other nanophotonic devices.
石墨烯包裹核壳纳米粒子偶极响应的可调时间动力学
我们对石墨烯包裹的核壳纳米粒子在高斯脉冲照射下的时间动力学进行了研究。通过改变石墨烯层和核壳结构的长宽比,我们可以将共振模式调整为太赫兹机制下的典型情况。因此,当入射脉冲的脉冲持续时间远短于、类似于和远长于局部表面等离子体寿命时,我们检测到了不同的时间演化情况,包括两种具有指数衰减趋势的超快振荡、纯指数衰减和高斯形状。令人感兴趣的是,当两个谐振模式之间存在耦合时,人们会预测出长周期振荡,其周期恰好是谐振模式频率之差。因此,超快振荡的内在特性几乎不受输入信号的影响。进一步的定量计算表明,超快振荡的周期可以通过不同的物理机制进行调节,这些机制分别基于单个谐振的自交互校正和谐振模式之间在频域上的强耦合。我们的研究结果可能适用于光学传感器、光学信息处理和其他纳米光子器件领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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