Mermillod-Blondin Alexandre, Mauclair Cyril, Bonse Jörn, Stoian Razvan, Audouard Eric, Rosenfeld Arkadi, Hertel Ingolf V
Max-Born-Institut für Nichtlineare Optik und Kurzzeitspektroskopie, Max-Born-Straße, D-12489 Berlin, Germany.
Rev Sci Instrum. 2011 Mar;82(3):033703. doi: 10.1063/1.3527937.
We describe a method to visualize ultrafast laser-induced refractive index changes in transparent materials with a 310 fs impulse response and a submicrometer spatial resolution. The temporal profile of the laser excitation sequence can be arbitrarily set on the subpicosecond and picosecond time scales with a pulse shaping unit, allowing for complex laser excitation. Time-resolved phase contrast microscopy reveals the real part of the refractive index change and complementary time-resolved optical transmission microscopy measurements give access to the imaginary part of the refractive index in the irradiated region. A femtosecond laser source probes the complex refractive index changes from the excitation time up to 1 ns, and a frequency-doubled Nd:YAG laser emitting 1 ns duration pulses is employed for collecting data at longer time delays, when the evolution is slow. We demonstrate the performance of our setup by studying the energy relaxation in a fused silica sample after irradiation with a double pulse sequence. The excitation pulses are separated by 3 ps. Our results show two dimensional refractive index maps at different times from 200 fs to 100 μs after the laser excitation. On the subpicosecond time scale we have access to the spatial characteristics of the energy deposition into the sample. At longer times (800 ps), time-resolved phase contrast microscopy shows the appearance of a strong compression wave emitted from the excited region. On the microsecond time scale, we observe energy transfer outside the irradiated region.
我们描述了一种方法,用于可视化透明材料中超快激光诱导的折射率变化,其具有310飞秒的脉冲响应和亚微米级的空间分辨率。利用脉冲整形单元,可以在亚皮秒和皮秒时间尺度上任意设置激光激发序列的时间轮廓,从而实现复杂的激光激发。时间分辨相衬显微镜揭示了折射率变化的实部,而互补的时间分辨光透射显微镜测量则可获取辐照区域内折射率的虚部。飞秒激光源探测从激发时刻到1纳秒的复折射率变化,当演化较慢时,使用发射持续时间为1纳秒脉冲的倍频Nd:YAG激光在更长的时间延迟下收集数据。我们通过研究双脉冲序列辐照后熔融石英样品中的能量弛豫来展示我们装置的性能。激发脉冲相隔3皮秒。我们的结果显示了激光激发后从200飞秒到100微秒不同时间的二维折射率图。在亚皮秒时间尺度上,我们能够获取能量沉积到样品中的空间特征。在更长时间(800皮秒)时,时间分辨相衬显微镜显示从激发区域发射出强烈的压缩波。在微秒时间尺度上,我们观察到能量在辐照区域外转移。