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Nanoscale diffractive probing of strain dynamics in ultrafast transmission electron microscopy

机译:超快速透射电子显微镜中应变动力学的纳米级衍射探测

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摘要

The control of optically driven high-frequency strain waves in nanostructured systems is an essential ingredient for the further development of nanophononics. However, broadly applicable experimental means to quantitatively map such structural distortion on their intrinsic ultrafast time and nanometer length scales are still lacking. Here, we introduce ultrafast convergent beam electron diffraction with a nanoscale probe beam for the quantitative retrieval of the time-dependent local deformation gradient tensor. We demonstrate its capabilities by investigating the ultrafast acoustic deformations close to the edge of a single-crystalline graphite membrane. Tracking the structural distortion with a 28-nm/700-fs spatio-temporal resolution, we observe an acoustic membrane breathing mode with spatially modulated amplitude, governed by the optical near field structure at the membrane edge. Furthermore, an in-plane polarized acoustic shock wave is launched at the membrane edge, which triggers secondary acoustic shear waves with a pronounced spatio-temporal dependency. The experimental findings are compared to numerical acoustic wave simulations in the continuous medium limit, highlighting the importance of microscopic dissipation mechanisms and ballistic transport channels.
机译:纳米结构系统中光驱动高频应变波的控制是纳米声子学进一步发展的重要组成部分。然而,仍然缺乏广泛应用的实验手段来在其固有的超快时间和纳米长度尺度上定量地描绘这种结构畸变。在这里,我们介绍了纳米级探针束的超快会聚束电子衍射,用于定量检索随时间变化的局部变形梯度张量。我们通过研究靠近单晶石墨膜边缘的超快速声变形来证明其功能。以28 nm / 700 fs的时空分辨率跟踪结构变形,我们观察到了具有空间调制幅度的声膜呼吸模式,该模式由膜边缘的光学近场结构控制。此外,在膜边缘处发射面内极化声冲击波,从而触发具有明显的时空依赖性的次级声切变波。将实验结果与连续介质极限中的数值声波模拟进行了比较,突出了微观耗散机制和弹道传输通道的重要性。

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