Lee Yeon Ui, Li Shilong, Zhao Junxiang, Posner Clara, Zhang Jin, Liu Zhaowei
Department of Electrical and Computer Engineering, University of California San Diego, 9500 Gilman Drive, La Jolla, CA, 92093, USA.
Department of Physics, Chungbuk National University, Cheongju, Chungbuk, 28644, South Korea.
Adv Sci (Weinh). 2024 Oct;11(39):e2404883. doi: 10.1002/advs.202404883. Epub 2024 Aug 20.
Recent advancements in optical metamaterials have opened new possibilities in the exciting field of super-resolution microscopies. The far-field metamaterial-assisted illumination nanoscopies (MAINs) have, very recently, enhanced the lateral resolution to one-fifteenth of the optical wavelength. However, the axial localization accuracy of fluorophores in the MAINs remains rarely explored. Here, a MAIN with a nanometer-scale axial localization accuracy is demonstrated by monitoring the distance-dependent photobleaching dynamics of the fluorophores on top of an organic hyperbolic metamaterial (OHM) substrate under a wide-field single-objective microscope. With such a regular experimental configuration, 3D imaging of various biological samples with the resolution of ≈40 nm in the lateral dimensions and ≈5 nm in the axial dimension is realized. The demonstrated imaging modality enables the resolution of the 3D morphology of nanoscopic cellular structures with a significantly simplified experimental setup.
光学超材料的最新进展为超分辨率显微镜这一令人兴奋的领域开辟了新的可能性。最近,远场超材料辅助照明纳米显微镜(MAINs)已将横向分辨率提高到光波长的十五分之一。然而,MAINs中荧光团的轴向定位精度仍很少被探索。在此,通过在宽场单物镜显微镜下监测有机双曲线超材料(OHM)衬底上荧光团的距离依赖性光漂白动力学,展示了一种具有纳米级轴向定位精度的MAINs。通过这种常规的实验配置,实现了对各种生物样品的三维成像,横向分辨率约为40纳米,轴向分辨率约为5纳米。所展示的成像方式能够以显著简化的实验装置解析纳米级细胞结构的三维形态。