石墨薄膜超快非线性光学特性的第一性原理研究

M. Uemoto, Shintaro Kurata, Norihito Kawaguchi, K. Yabana
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引用次数: 9

摘要

基于第一性原理时致密度泛函理论,从理论上研究了石墨薄膜的超快和非线性光学特性。我们首先计算了在强脉冲电场作用下石墨单胞内的电子动力学,并探讨了石墨的瞬态光学性质。结果表明,在一定的外加电场强度范围内,石墨的光学响应由导电相位突然转变为绝缘相位。它也表现为可饱和吸收,即能量从电场转移到电子的饱和。接下来,我们通过同时求解电子和电磁场的耦合动力学来研究光在石墨薄膜中的传播。在电场振幅约为$4 \sim 7 \ × 10^{-2}$ V/埃的空间区域内,传输过程中出现了可饱和吸收,衰减很小。
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First-principles study of ultrafast and nonlinear optical properties of graphite thin films
We theoretically investigate ultrafast and nonlinear optical properties of graphite thin films based on first-principles time-dependent density functional theory. We first calculate electron dynamics in a unit cell of graphite under a strong pulsed electric field and explore the transient optical properties of graphite. It is shown that the optical response of graphite shows a sudden change from conducting to insulating phase at a certain intensity range of the applied electric field. It also appears as a saturable absorption, the saturation in the energy transfer from the electric field to electrons. We next investigate a light propagation in graphite thin films by solving coupled dynamics of the electrons and the electromagnetic fields simultaneously. It is observed that the saturable absorption manifests in the propagation with small attenuation in the spatial region where the electric field amplitude is about $4 \sim 7 \times 10^{-2}$ V/Angstrom.
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