论文标题

由时域brillouin散射共存高压H2O冰阶段的单个晶粒的3D表征

3D characterisation of individual grains of coexisting high-pressure H2O ice phases by time-domain Brillouin scattering

论文作者

Sandeep, Sathyan, Thréard, Théo, Savi, Elton De Lima, Chigarev, Nikolay, Bulou, Alain, Tournat, Vincent, Zerr, Andreas, Gusev, Vitalyi E., Raetz, Samuel

论文摘要

时间域Brillouin散射使用超短激光脉冲来在固体样品中产生picseconds持续时间的相干声音脉冲,并跟随它们的传播,以形象以次光度深度分辨率的材料不均匀性。声脉冲的宽度限制了沿脉冲传播方向的技术的空间分辨率到小于几十纳米的空间分辨率。因此,时间域Brillouin散射的表现优于经典频域Brillouin散射显微镜的轴向分辨率,该显微镜使用连续激光器和热声子,以及哪些空间分辨率由光聚焦控制。该技术受益于相干声音的应用,其应用对生物医学和物质科学中的纳米级成像具有令人兴奋的观点。在这项研究中,我们报告了时间域Brillouin散射的应用到包含两个高压相的水冰多晶的3D成像中。通过同时检测准长义和准剪切波来完成的成像为识别单个晶粒的相位并评估其晶体学方向提供了机会。监测两个相邻晶粒中声波的传播为晶界定位提供了额外的平均值。

Time-domain Brillouin scattering uses ultrashort laser pulses to generate coherent acoustic pulses of picoseconds duration in a solid sample and to follow their propagation in order to image material inhomogeneities with sub-optical depth resolution. The width of the acoustic pulse limits the spatial resolution of the technique along the direction of the pulse propagation to less than several tens of nanometres. Thus, the time-domain Brillouin scattering outperforms axial resolution of the classical frequency-domain Brillouin scattering microscopy, which uses continuous lasers and thermal phonons and which spatial resolution is controlled by light focusing. The technique benefits from the application of the coherent acoustic phonons, and its application has exciting perspectives for the nanoscale imaging in biomedical and material sciences. In this study, we report on the application of the time-domain Brillouin scattering to the 3D imaging of a polycrystal of water ice containing two high-pressure phases. The imaging, accomplished via a simultaneous detection of quasi-longitudinal and quasi-shear waves, provided the opportunity to identify the phase for individual grains and evaluate their crystallographic orientation. Monitoring the propagation of the acoustic waves in two neighbouring grains simultaneously provided an additional mean for the localisation of the grain boundaries.

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