A super-oscillatory lens optical microscope for subwavelength imaging
Top Cited Papers
- 25 March 2012
- journal article
- Published by Springer Nature in Nature Materials
- Vol. 11 (5), 432-435
- https://doi.org/10.1038/nmat3280
Abstract
The past decade has seen an intensive effort to achieve optical imaging resolution beyond the diffraction limit. Apart from the Pendry-Veselago negative index superlens, implementation of which in optics faces challenges of losses and as yet unattainable fabrication finesse, other super-resolution approaches necessitate the lens either to be in the near proximity of the object or manufactured on it, or work only for a narrow class of samples, such as intensely luminescent or sparse objects. Here we report a new super-resolution microscope for optical imaging that beats the diffraction limit of conventional instruments and the recently demonstrated near-field optical superlens and hyperlens. This non-invasive subwavelength imaging paradigm uses a binary amplitude mask for direct focusing of laser light into a subwavelength spot in the post-evanescent field by precisely tailoring the interference of a large number of beams diffracted from a nanostructured mask. The new technology, which--in principle--has no physical limits on resolution, could be universally used for imaging at any wavelength and does not depend on the luminescence of the object, which can be tens of micrometres away from the mask. It has been implemented as a straightforward modification of a conventional microscope showing resolution better than λ/6.Keywords
This publication has 25 references indexed in Scilit:
- Optical virtual imaging at 50 nm lateral resolution with a white-light nanoscopeNature Communications, 2011
- Spherical hyperlens for two-dimensional sub-diffractional imaging at visible frequenciesNature Communications, 2010
- Super-resolution and reconstruction of sparse sub-wavelength imagesOptics Express, 2009
- Near-field focusing and magnification through self-assembled nanoscale spherical lensesNature, 2009
- Superlenses to overcome the diffraction limitNature Materials, 2008
- Three-Dimensional Super-Resolution Imaging by Stochastic Optical Reconstruction MicroscopyScience, 2008
- Magnifying Superlens in the Visible Frequency RangeScience, 2007
- Evolution of quantum superoscillations and optical superresolution without evanescent wavesJournal of Physics A: General Physics, 2006
- Toward fluorescence nanoscopyNature Biotechnology, 2003
- Negative Refraction Makes a Perfect LensPhysical Review Letters, 2000