Aleman Ademir, Muralidhar Shreyas, Awad Ahmad A, Åkerman Johan, Hanstorp Dag
Opt Express. 2020 Sep 28;28(20):29540-29552. doi: 10.1364/OE.398619.
Brillouin light scattering (BLS) microscopy is a well established and powerful technique to study acoustic and magnetic excitations in the frequency domain with sub-micron spatial resolution. Many other spectroscopic techniques have benefited from the introduction of femtosecond laser sources to optically pump and stimulate the sample under investigation. In BLS microscopy, the use of femtosecond lasers as the excitation source introduces several challenges, primarily since the measured frequency shift is small and the signal levels are weak due to the low duty cycle of typical femtosecond lasers. Here we present a method to evade these challenges. A strong enhancement of the weak scattering amplitude on selected modes is observed by pumping the sample with a high repetition rate frequency comb laser source. The laser beam can be focused to the diffraction limit, providing a micron pumping area. We can thus preserve the innate high frequency and spatial resolution of BLS microscopy. Furthermore, we are able to induce a point-like source of mode-selected elementary excitations which propagate away from the pumping spot. We conclude that we have demonstrated frequency comb pumped BLS microscopy as an attractive tool for studies of ultrafast induced laser dynamics directly in the frequency domain.
布里渊光散射(BLS)显微镜是一种成熟且强大的技术,用于在频域中以亚微米空间分辨率研究声学和磁激发。许多其他光谱技术受益于飞秒激光源的引入,以光学方式泵浦和激发被研究的样品。在BLS显微镜中,使用飞秒激光作为激发源带来了几个挑战,主要是因为由于典型飞秒激光的低占空比,测量的频移很小且信号水平较弱。在此,我们提出一种方法来规避这些挑战。通过用高重复率频率梳激光源泵浦样品,观察到所选模式上弱散射幅度的强烈增强。激光束可以聚焦到衍射极限,提供一个微米级的泵浦区域。因此,我们可以保留BLS显微镜固有的高频率和空间分辨率。此外,我们能够诱导一个模式选择的基本激发的点状源,它从泵浦点传播开来。我们得出结论,我们已经证明了频率梳泵浦的BLS显微镜是一种有吸引力的工具,可直接在频域中研究超快诱导的激光动力学。