superlens
Sign in to saveA superlens, or super lens, is a lens which uses metamaterials to go beyond the diffraction limit. The diffraction limit is a feature of conventional lenses and microscopes that limits the fineness of their resolution depending on the illumination wavelength and the numerical aperture (NA) of the objective lens. Many lens designs have been proposed that go beyond the diffraction limit in some way, but constraints and obstacles face each of them.
~57 min read
Article
33 sectionsContents
- History
- Theory
- Image formation
- Conventional lens
- Subwavelength imaging
- Early subwavelength imaging
- Analysis of the diffraction limit
- The diffraction limit as restriction on resolution
- Effects of negative index of refraction
- Development and construction
- Perfect lenses
- Other studies concerning the perfect lens
- Near-field imaging with magnetic wires
- Optical superlens with silver metamaterial
- 50-nm flat silver layer
- Negative index GRIN lenses
- Far-field superlens
- Focusing beyond the diffraction limit with far-field time reversal
- Hyperlens
- Sub-diffraction imaging in the far field
- Plasmon-assisted microscopy
- Super-imaging in the visible frequency range
- Super resolution far-field microscopy techniques
- Cylindrical superlens via coordinate transformation
- Nano-optics with metamaterials
- Nanohole array as a lens
- Nanolens
- Light transmission properties of holey metal films
- Transporting an image through a subwavelength hole
- Nanoparticle imaging – quantum dots
- See also
- References
- External links
A superlens, or super lens, is a lens which uses metamaterials to go beyond the diffraction limit. The diffraction limit is a feature of conventional lenses and microscopes that limits the fineness of their resolution depending on the illumination wavelength and the numerical aperture (NA) of the objective lens. Many lens designs have been proposed that go beyond the diffraction limit in some way, but constraints and obstacles face each of them.
== History == In 1873 Ernst Abbe reported that conventional lenses are incapable of capturing some fine details of any given image. The superlens is intended to capture such details. This limitation of conventional lenses has inhibited progress in the biological sciences. This is because a virus or DNA molecule cannot be resolved with the highest powered conventional microscopes. This limitation extends to the minute processes of cellular proteins moving alongside microtubules of a living cell in their natural environments. Additionally, computer chips and the interrelated microelectronics continue to be manufactured at progressively smaller scales. This requires specialized optical equipment, which is also limited because these use conventional lenses. Hence, the principles governing a superlens show that it has potential for imaging DNA molecules, cellular protein processes, and aiding in the manufacture of even smaller computer chips and microelectronics.