Department of Optics, Palacký University, 17. listopadu 1192/12, 771 46 Olomouc, Czech Republic.
Institute of Physical Engineering, Faculty of Mechanical Engineering, Brno University of Technology, Technická 2, 616 69 Brno, Czech Republic.
Nano Lett. 2021 Sep 8;21(17):7244-7251. doi: 10.1021/acs.nanolett.1c02278. Epub 2021 Aug 25.
The key information about any nanoscale system relates to the orientations and conformations of its parts. Unfortunately, these details are often hidden below the diffraction limit, and elaborate techniques must be used to optically probe them. Here we present imaging of the 3D rotation motion of metal nanorods, restoring the distinct nanorod orientations in the full extent of azimuthal and polar angles. The nanorods imprint their 3D orientation onto the geometric phase and space-variant polarization of the light they scatter. We manipulate the light angular momentum and generate optical vortices that create self-interference images providing the nanorods' angles via digital processing. After calibration by scanning electron microscopy, we demonstrated time-resolved 3D orientation imaging of sub-100 nm nanorods under Brownian motion (frame rate up to 500 fps). We also succeeded in imaging nanorods as nanoprobes in live-cell imaging and reconstructed their 3D rotational movement during interaction with the cell membrane (100 fps).
任何纳米级系统的关键信息都与其各部分的取向和构象有关。不幸的是,这些细节通常隐藏在衍射极限之下,必须使用精心设计的技术来进行光学探测。在这里,我们展示了金属纳米棒的三维旋转运动的成像,恢复了在整个方位角和极角范围内的明显纳米棒取向。纳米棒将其三维取向印刻在它们散射的光的几何相位和空间变化的偏振上。我们操纵光的角动量并产生光学涡旋,通过数字处理创建自干涉图像,从而提供纳米棒的角度。经过扫描电子显微镜的校准,我们演示了在布朗运动下(帧率高达 500 fps)对亚 100nm 纳米棒的时间分辨三维取向成像。我们还成功地将纳米棒作为纳米探针用于活细胞成像,并在与细胞膜相互作用期间重建了它们的三维旋转运动(100 fps)。