School of Chemistry, The Raymond and Beverly Sackler Faculty of Exact Sciences and ‡The Center for Nanoscience and Nanotechnology, Tel Aviv University , Tel Aviv 69978, Israel.
Nano Lett. 2015 Feb 11;15(2):1362-7. doi: 10.1021/nl504640e. Epub 2015 Jan 26.
We demonstrate a new, label-free, far-field super-resolution method based on an ultrafast pump-probe scheme oriented toward nanomaterial imaging. A focused pump laser excites a diffraction-limited spatial temperature profile, and the nonlinear changes in reflectance are probed. Enhanced spatial resolution is demonstrated with nanofabricated silicon and vanadium dioxide nanostructures. Using an air objective, resolution of 105 nm was achieved, well beyond the diffraction limit for the pump and probe beams and offering a novel kind of dedicated nanoscopy for materials.
我们展示了一种新的、无标记的远场超分辨率方法,该方法基于超快泵浦探测方案,适用于纳米材料成像。聚焦的泵浦激光激发了一个衍射极限的空间温度分布,探测反射率的非线性变化。利用纳米制造的硅和二氧化钒纳米结构,证明了增强的空间分辨率。使用空气物镜,实现了 105nm 的分辨率,远远超过了泵浦和探测光束的衍射极限,为材料提供了一种新颖的专用纳米显微镜。