论文标题

低电子密度材料的光学非线性基于电子的模型

An electronic-based model of the optical nonlinearity of low-electron-density-Drude materials

论文作者

Un, Ieng Wai, Sarkar, Subhajit, Sivan, Yonatan

论文摘要

低电子密度DRUDE(LEDD)材料(例如二锡氧化物(ITO))由于CMOS兼容性的结合,独特的Epsilon-Near-near-Zero(ENZ)行为以及巨大的超快非线性非线性热力学反应而受到了极大的关注。然而,到目前为止,对LEDD材料的电子和光学响应的​​理解是基于已知的贵金属模型的简单扩展,通常没有在较低的电子密度之间包含相互作用,相对较高的Debye能量和非促蛋白酶带的结构。为了弥合这一知识差距,这项工作提供了对Ledd材料的非线性电子电流响应的完全理解。特别是,我们依赖于最新的电子动力学建模,以及在绝热近似中光泵下的LEDD材料的新派生的时间依赖性介电常数模型。我们发现,与高贵的金属不同,电子温度可以达到费米温度,在这种情况下,有效的化学势会大大降低甚至变为负,因此将drude金属瞬时转化为半导体。我们进一步表明,源自介电常数的实际部分的LEDD材料的非线性光学响应是由于非热电子的产生。这解决了关于介电常数的上升时间的论点,并表明它是瞬时的。在这种情况下,我们表明,将LEDD介电常数视为具有``饱和''的非线性是不合适的,因为它的介电性动力学不是源自种群反演。最后,我们分析了探针脉冲动力学,与以前的工作不同,我们获得了与最近实验结果的定量一致性。

Low electron density Drude (LEDD) materials such as indium tin oxide (ITO) are receiving considerable attention because of their combination of CMOS compatibility, unique epsilon-near-zero (ENZ) behavior, and giant ultrafast nonlinear thermo-optic response. However, the understanding of the electronic and optical response of LEDD materials is so far based on simplistic extensions of known models of noble metals, frequently without the inclusion of the interplay among the lower electron density, relatively high Debye energy, and the non-parabolic band structure. To bridge this knowledge gap, this work provides a complete understanding of the nonlinear electronic-thermal-optical response of LEDD materials. In particular, we rely on state-of-the-art electron dynamics modeling, as well as the newly derived time-dependent permittivity model for LEDD materials under optical pumping within the adiabatic approximation. We find that unlike noble metals, the electron temperatures can reach the Fermi temperature, in which case the effective chemical potential dramatically decreases and even becomes negative, thus, transiently converting the Drude metal into a semiconductor. We further show that the nonlinear optical response of LEDD materials originating from the changes to the real part of the permittivity is due to the generation of non-thermal electrons. This resolves the argument about the rise time of the permittivity and shows that it is instantaneous. In this vein, we show that referring to the LEDD permittivity as having a ``saturable'' nonlinearity is unsuitable since its permittivity dynamics does not originate from population inversion. Finally, we analyze the probe pulse dynamics and unlike previous work, we obtain a quantitative agreement with the results of recent experiments.

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