3 research outputs found
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Numerical study of hyperlenses for three-dimensional imaging and lithography.
The development of nanostructured metamaterials and the ability to engineer material dispersion has led to impressive advances in the diverse field of nanophotonics. Of interest to many is the enhanced ability to control, illuminate, and image with light on subwavelength scales. In this letter, we numerically demonstrate a hyperlens with unprecedented radial-resolution at 5 nm scale for both imaging and lithography applications. Both processes are shown to have accuracy that surpasses the Abbe diffraction limit in the radial direction, which has potential applications for 3D imaging and lithography. Design optimization is discussed with regards to several important hyperlens parameters
Numerical study of hyperlenses for three-dimensional imaging and lithography.
The development of nanostructured metamaterials and the ability to engineer material dispersion has led to impressive advances in the diverse field of nanophotonics. Of interest to many is the enhanced ability to control, illuminate, and image with light on subwavelength scales. In this letter, we numerically demonstrate a hyperlens with unprecedented radial-resolution at 5 nm scale for both imaging and lithography applications. Both processes are shown to have accuracy that surpasses the Abbe diffraction limit in the radial direction, which has potential applications for 3D imaging and lithography. Design optimization is discussed with regards to several important hyperlens parameters
Wide Field Super-Resolution Surface Imaging through Plasmonic Structured Illumination Microscopy
We
experimentally demonstrate a wide field surface plasmon (SP)
assisted super-resolution imaging technique, plasmonic structured
illumination microscopy (PSIM), by combining tunable SP interference
(SPI) with structured illumination microscopy (SIM). By replacing
the laser interference fringes in conventional SIM with SPI patterns,
PSIM exhibits greatly enhanced resolving power thanks to the unique
properties of SP waves. This PSIM technique is a wide field, surface
super-resolution imaging technique with potential applications in
the field of high-speed biomedical imaging