Huynh A, Perrin B, Lemaître A
Sorbonne Universités, UPMC Univ Paris 06, UMR 7588, Institut des Nanosciences de Paris, F-75005 Paris, France.
CNRS, UMR 7588, Institut des Nanosciences de Paris, F-75005 Paris, France.
Ultrasonics. 2015 Feb;56:66-79. doi: 10.1016/j.ultras.2014.07.009. Epub 2014 Aug 7.
The properties of optical to acoustic transduction of semiconductor superlattices have been explored for several years in the sub terahertz frequency range. Using femtosecond laser pulses focused on these structures, acoustic modes are excited with a frequency related to the periodicity of the structure stacking. We have shown that these acoustic waves can be extracted and can propagate in the underlying substrate. We study superlattices ability to be quasi monochromatic generators. On the other hand, superlattices have been found to be very sensitive and selective detectors. We present a set of experimental results concerning the generation, propagation over large distances and detection of acoustic waves at high frequencies, up to the challenging 1 THz by picosecond ultrasonics experiments in transmission geometry.
半导体超晶格的光声转换特性已在亚太赫兹频率范围内研究了数年。利用聚焦在这些结构上的飞秒激光脉冲,激发与结构堆叠周期性相关频率的声学模式。我们已经表明,这些声波可以被提取并能在下层衬底中传播。我们研究了超晶格作为准单色发生器的能力。另一方面,超晶格已被发现是非常灵敏且具有选择性的探测器。我们展示了一组关于通过透射几何结构中的皮秒超声实验在高达具有挑战性的1太赫兹的高频下声波的产生、长距离传播和检测的实验结果。