论文标题

基于光谱过滤的GAAS/藻类异质结构中的准非偏度泵探针磁通实验

Quasi-nondegenerate pump-probe magnetooptical experiment in GaAs/AlGaAs heterostructure based on spectral filtration

论文作者

Surynek, M., Nadvornik, L., Schmoranzerova, E., Nemec, P.

论文摘要

我们报告了一种准化学泵探针技术,该技术基于一对相互启发性的干扰过滤器的飞秒激光脉冲的光谱滤光。即使在泵探针显微镜中也可以使用这种成本和空间效率的方法,在泵探针显微镜中,泵和探针脉冲的共线传播是通过使用显微镜物镜决定的。该技术解决了有效地从探针光束中泵光子去除泵光子的矛盾要求,以达到良好的信噪比,同时及其与激发和探测的所需光谱接近性,这对于许多材料系统的磁化研究至关重要。重要的是,这种100 FS长激光脉冲的光谱滤光不会极大地影响产生的时间分辨率,该时间分辨率远低于500 fs。我们证明了该技术的实际适用性,具有在空间和时间分辨的自旋敏感磁通量KERR效应(MOKE)实验中的泵和探针脉冲的近距离波长,在GAAS/Algaas异质结构中,高体型旋转系统在电波上的电气上是高体积的旋转系统,该系统在电波上的电源近距离发出后,在该效果上均可在波长接近Moke resonance上进行。特别是,我们研究了与电荷相关(反射率)和自旋相关(moke)信号的时间和空间修饰。我们透露,它们以类似但不完全相同的方式演变为GAA中的几种电子多体效应的相互作用。

We report on a quasi-nondegenerate pump-probe technique that is based on spectral-filtration of femtosecond laser pulses by a pair of mutually-spectrally-disjunctive interference filters. This cost- and space-efficient approach can be used even in pump-probe microscopy where collinear propagation of pump and probe pulses is dictated by utilization of a microscopic objective. This technique solves the contradictory requirements on an efficient removal of pump photons from the probe beam, to achieve a good signal-to-noise ratio, simultaneously with a needed spectral proximity of the excitation and probing, which is essential for magnetooptical study of many material systems. Importantly, this spectral-filtration of 100 fs long laser pulses does not affect considerably the resulting time-resolution, which remains well below 500 fs. We demonstrate the practical applicability of this technique with close but distinct wavelengths of pump and probe pulses in spatially- and time-resolved spin-sensitive magnetooptical Kerr effect (MOKE) experiment in GaAs/AlGaAs heterostructure, where a high-mobility spin system is formed after optical injection of electrons at wavelengths close to MOKE resonance. In particular, we studied the time- and spatial-evolutions of charge-related (reflectivity) and spin-related (MOKE) signals. We revealed that they evolve in a similar but not exactly the same way which we attributed to interplay of several electron many-body effects in GaAs.

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