
No one has yet made a superlens, also known as a perfect lens, though people are trying. Optical lenses are limited by the nature of light, the so-called diffraction limit, so even the best won’t usually let us see objects smaller than 200 nanometers across, about the size of the smallest bacterium. Scanning electron microscopes can capture objects that are much smaller, about a nanometer wide, but they are expensive, heavy, and, at the size of a large desk, not very portable.
To build a superlens, you need metamaterials: artificial materials with properties not seen in nature. Scientists are beginning to fabricate metamaterials in their quest to make real seemingly magical phenomena like invisibility cloaks, quantum levitation—and superlenses.
Now Guney, an assistant professor of electrical and computer engineering at Michigan Technological University, has taken a major step toward creating superlens that could use visible light to see objects as small as 100 nanometers across.
The secret lies in plasmons, charge oscillations near the surface of thin metal films that combine with special nanostructures. When excited by an electromagnetic field, they gather light waves from an object and refract it in a way not seen in nature called negative refraction. This lets the lens overcomes the diffraction limit. And, in the case of Guney’s model, it could allow us to see objects smaller than 1/1,000th the width of a human hair.
Other researchers have also been able to sidestep the diffraction limit, but not throughout the entire spectrum of visible light. Guney’s model showed how metamaterials might be “stretched” to refract light waves from the infrared all the way past visible light and into the ultraviolet spectrum.
Making these superlenses would be relatively inexpensive, which is why they might find their way into cell phones. But there would be other uses as well, says Guney.
“It could also be applied to lithography," the microfabrication process used in electronics manufacturing. “The lens determines the feature size you can make, and by replacing an old lens with this superlens, you could make smaller features at a lower cost. You could make devices as small as you like.”
Computer chips are made using UV lasers, which are expensive and difficult to build. “With this superlens, you could use a red laser, like the pointers everyone uses, and have simple, cheap machines, just by changing the lens.”
What excites Guney the most, however, is that a cheap, accessible superlens could open our collective eyes to worlds previously known only to a very few.
“The public’s access to high-powered microscopes is negligible,” he says. “With superlenses, everybody could be a scientist. People could put their cells on Facebook. It might just inspire society’s scientific soul.”
Guney and graduate student Muhammad Aslam published an article on their work, “Surface Plasmon Diven Scalable Low-Loss Negative-Index Metamaterial in the visible spectrum,” in Physical Review B, volume 84, issue 19.0
Michigan Technological University (www.mtu.edu) is a leading public research university developing new technologies and preparing students to create the future for a prosperous and sustainable world. Michigan Tech offers more than 130 undergraduate and graduate degree programs in engineering; forest resources; computing; technology; business; economics; natural, physical and environmental sciences; arts; humanities; and social sciences.
Marcia Goodrich | Source: EurekAlert!
Further information: www.mtu.edu
Further Reports about: cell phone > Creation > electron microscope > light waves > social science > Superlens > visible light
More articles from Physics and Astronomy:
Electricity without losses
18.05.2012 | Universität Konstanz
Herschel Space Observatory study reveals galaxy-packed filament
18.05.2012 | McGill University
The first evidence in X-rays of a supernova shock wave breaking through a cocoon of gas around the star has been found.
This discovery may help explain why some supernova explosions are more powerful than others.
This supernova is called SN 2010jl and is found in a galaxy about 160 million light years from Earth.
SN 2010jl was first spotted by astronomers on November 3, 2010, and probably exploded about a month before that.
Observations with NASA's Chandra X-ray Observatory have provided the first X-ray evidence of a supernova shock wave breaking through a cocoon of gas surrounding the star that exploded. This discovery may help astronomers understand why some supernovas are much more powerful than others.
On November 3, 2010, a supernova was ...
An international research team led by Gerd Weigelt from the Max-Planck-Institut für Radioastronomie in Bonn reports on high-resolution studies of an active galactic nucleus.
The use of near-infrared interferometry allowed the team to resolve a ring-shaped dust distribution (generally called "dust torus") in the inner region of the nucleus of the active galaxy NGC 3783. This method is able to achieve an angular resolution equivalent to the resolution of a telescope with a diameter ...
Some populations of tiger snakes stranded for thousands of years on tiny islands surrounding Australia have evolved to be giants, growing to nearly twice the size of their mainland cousins. Now, new research in The American Naturalist suggests that the enormity of these elapids was driven by the need to have big-mouthed babies.
Mainland tiger snakes, which generally max out at 35 inches (89 cm) long, patrol swampy areas in search of frogs, their dietary staple. When sea levels rose around 10,000 years ago, some tiger snakes found themselves marooned on islands that would become dry and frog-free. With their favorite food gone, ...
HITS astrophysicists discover a new heating source in cosmological structure formation
So far, astrophysicists thought that super-massive black holes can only influence their immediate surroundings. A collaboration of scientists at the Heidelberg Institute for Theoretical Studies (HITS) and in Canada and the US now discovered that diffuse gas in the universe can absorb luminous gamma-ray emission from black holes, heating it ...
After ten years of development, the new German solar telescope GREGOR will start operating at the Spanish Observatorio del Teide of the Instituto de Astrofísica de Canarias on Tenerife. It is the largest solar telescope in Europe and number three worldwide.
It will provide the German and the international community of solar physicists with new and better instrumentation which will enable them to investigate our home star in unprecedented detail.
Studying the Sun is a key to understand the physical processes on and in the majority of stars. Moreover, there is ...
New technique reveals unseen information in DNA code
18.05.2012 | Life Sciences
Biologists Produce Potential Malarial Vaccine from Algae
18.05.2012 | Life Sciences
Listening to Chickens Could Improve Poultry Production
18.05.2012 | Agricultural and Forestry Science
10.05.2012 | Event News
WWU hosts Germany’s Biggest Giftedness Congress
09.05.2012 | Event News
Neuroscientists Discuss Latest Research Results in Potsdam
08.05.2012 | Event News