高效产生相干声子的光纤集成微腔

arXiv: Optics Pub Date : 2020-08-27 DOI:10.1063/5.0026959
O. Ortiz, F. Pastier, A. Rodriguez, Priya, A. Lemaître, C. Gomez-Carbonell, I. Sagnes, A. Harouri, P. Senellart, V. Giesz, M. Esmann, N. Lanzillotti-Kimura
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引用次数: 11

摘要

利用光泵浦-探针实验产生相干声子,可以在纳米尺度上研究平面异质结构、等离子体谐振器、微柱和纳米线的声学特性。将泵和探针都聚焦在样品的同一点上是泵-探针实验的关键部分。这在小物体的情况下尤为重要。该技术在实际应用中面临的主要挑战是:时空重叠的稳定性、聚焦的可再现性和光模匹配条件。在这项工作中,我们解决了平面和微柱光声子腔的这三个挑战。我们将所研究的样品集成到单模光纤中,从而消除了聚焦光学来激发和检测相干声子的需要。在我们的样品中获得的至少66%的优异反射率对比度使我们能够在至少一整天的时间内观察稳定的相干声子信号,以及在极低的1w激发功率下观察信号。单片样品结构是可移动的,可以提供一种方法来执行可重复的即插即用实验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fiber-integrated microcavities for efficient generation of coherent acoustic phonons
Coherent phonon generation by optical pump-probe experiments has enabled the study of acoustic properties at the nanoscale in planar heterostructures, plasmonic resonators, micropillars and nanowires. Focalizing both pump and probe on the same spot of the sample is a critical part of pump-probe experiments. This is particularly relevant in the case of small objects. The main practical challenges for the actual implementation of this technique are: stability of the spatio-temporal overlap, reproducibility of the focalization and optical mode matching conditions. In this work, we solve these three challenges for the case of planar and micropillar optophononic cavities. We integrate the studied samples to single mode fibers lifting the need for focusing optics to excite and detect coherent acoustic phonons. The resulting excellent reflectivity contrast of at least 66% achieved in our samples allows us to observe stable coherent phonon signals over at least a full day and signals at extremely low excitation powers of 1uW. The monolithic sample structure is transportable and could provide a means to perform reproducible plug-and-play experiments.
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