微观结构
光学
材料科学
平版印刷术
激光器
光子学
分辨率(逻辑)
显微镜
光学显微镜
圆柱
制作
光电子学
物理
扫描电子显微镜
计算机科学
替代医学
机械工程
医学
病理
人工智能
冶金
工程类
作者
Bintao Du,Hao Zhang,Jun Xia,Jun Wu,Haibo Ding,Guodong Tong
标识
DOI:10.1021/acs.jpca.0c05415
摘要
Dielectric microstructures coupled with a conventional optical microscope have been proven to be a successful way to achieve super-resolution imaging. However, a limitation of such super-resolution imaging is the microstructure fabrication ability, which generally provides natural structures (such as spherical, hemispherical, superhemispherical microlenses, and so on). Meanwhile, the influences of microstructures with complex shapes on the super-resolved imaging still remain unknown. In this paper, direct laser writing (DLW) lithography is used to produce a series of complex microstructures, which are capable of achieving super-resolution imaging in the optical far-field region. Cylinder, truncated cone, hemisphere, and protruding hemisphere microstructures are successfully fabricated by this 3D printing technology, allowing us to resolve features as small as 100 nm under classical microscopy. Moreover, different microstructures lead to different photonic nanojet (PNJ) illuminations and collection efficiencies, resulting in a critical role in super-resolved imaging. The microstructures with spherical surfaces can easily collect the light scattered by the object and convert the high-spatial-frequency evanescent waves into propagating waves.
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