论文标题
通过高阶谐波生成在半导体量子点中追踪空间限制
Tracing spatial confinement in semiconductor quantum dots by high-order harmonic generation
论文作者
论文摘要
我们在这里报告了在不同尺寸的CDSE半导体量子点和参考散装CDSE薄膜的层中高阶谐波生成(HHG)的实验理论研究结果。我们观察到效率的强劲降低,直至完全抑制了最小点的带量的量子能量,而下方频率谐波谐波的强度仍然受到点大小的影响很小。此外,观察到,抑制上述间隙谐波与差距谐波的抑制之间的比率随驱动波长而增加。我们建议,在经典电子振荡半径以下的点大小的降低以及点壁散射的对应量限制了激光场的最大加速度。此外,这种散射导致运动的混乱,导致倾向和连贯性丧失,从而抑制了最高量谐波的发射效率。我们的结果表明,强烈的激光 - 纳米级固体相互作用的新制度中间,散装和单分子响应之间。
We report here on results of experimental-theoretical investigation of high-order harmonic generation (HHG) in layers of CdSe semiconductor quantum dots of different sizes and a reference bulk CdSe thin film. We observe a strong decrease in the efficiency, up to complete suppression of HHG with energies of quanta above the bandgap for the smallest dots, whereas the intensity of below bandgap harmonics remains weakly affected by the dot size. In addition, it is observed that the ratio between suppression of above gap harmonics versus below gap harmonics increases with driving wavelength. We suggest that the reduction in the dot size below the classical electron oscillatory radius and the corresponding off the dots wall scattering limits the maximum acceleration by the laser field. Moreover, this scattering leads to a chaotization of motion, causing dephasing and a loss of coherence, therefore suppressing the efficiency of the emission of highest-order harmonics. Our results demonstrate a new regime of intense laser-nanoscale solid interaction, intermediate between the bulk and single molecule response.