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Towards non-invasive, high-resolution 3D nano-tomography by ultrasonic scanning probe microscopy

机译:通过超声扫描探针显微镜向无创,高分辨率3D纳米断层扫描

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Nanoscale imaging techniques that can be used to visualize and characterize local aggregations of the embedded nanoparticulates with sufficient resolution have attracted a great deal of interest. Ultrasonic scanning probe microscopy (SPM) and its derivatives are nondestructive techniques that can be used to elucidate subsurface nanoscale features and mechanical properties. Although many different ultrasonic methods have been used for subsurface imaging, the mechanisms and crucial parameters associated with the contrast formation in subsurface imaging are still unclear. Here, the impact of mechanical properties of the nanoparticulates/matrix, size of the nanoparticulates, buried depth of the nanoparticulates, and the ultrasonic excitation frequency on the developed ultrasonic SPM images have been investigated. To verify our theoretical model, experimental measurements of scanning near-field ultrasound holography (SNFUH) have been recreated in our theoretical analysis to reveal comparable variations in phase contrast measured in SNFUH while scanning over the nanoparticulates embedded in bacteria.
机译:可以用于以足够的分辨率可视化和表征嵌入的纳米颗粒的局部聚集的纳米级成像技术引起了极大的兴趣。超声波扫描探针显微镜(SPM)及其衍生物是非破坏性技术,可用于阐明表面纳米级特征和机械性能。尽管许多不同的超声方法已用于地下成像,但与地下成像中形成对比的机制和关键参数仍不清楚。在这里,已经研究了纳米颗粒/基质的机械性能,纳米颗粒的尺寸,纳米颗粒的掩埋深度以及超声激发频率对显影的超声SPM图像的影响。为了验证我们的理论模型,已经在我们的理论分析中重新创建了扫描近场超声全息术(SNFUH)的实验测量结果,以揭示在SNFUH中测量的相差的可比变化,同时扫描细菌中嵌入的纳米颗粒。

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