Showing posts with label Missouri University of Science and Technology.. Show all posts
Showing posts with label Missouri University of Science and Technology.. Show all posts

Monday, April 29, 2013

Researchers Design Nanometer-Scale Material That Can Speed Up, Squeeze Light

The cross-section of a 100-nanometer-long “meta-atom” of gold and silicon oxide. Researchers say the meta-atom is capable of straightening and speeding up light waves. (Credit: Image courtesy of Missouri University of Science and Technology)
http://www.sciencedaily.com/releases/2013/04/130429094646.htm

Apr. 29, 2013 — In a process one researcher compares to squeezing an elephant through a pinhole, researchers at Missouri University of Science and Technology have designed a way to engineer atoms capable of funneling light through ultra-small channels.

Their research is the latest in a series of recent findings related to how light and matter interact at the atomic scale, and it is the first to demonstrate that the material -- a specially designed "meta-atom" of gold and silicon oxide -- can transmit light through a wide bandwidth and at a speed approaching infinity. The meta-atoms' broadband capability could lead to advances in optical devices, which currently rely on a single frequency to transmit light, the researchers say.
"These meta-atoms can be integrated as building blocks for unconventional optical components with exotic electromagnetic properties over a wide frequency range," write Dr. Jie Gao and Dr. Xiaodong Yang, assistant professors of mechanical engineering at Missouri S&T, and Dr. Lei Sun, a visiting scholar at the university. The researchers describe their atomic-scale design in the latest issue of the journal Physical Review B.
The researchers created mathematical models of the meta-atom, a material 100 nanometers wide and 25 nanometers tall that combined gold and silicon oxide in stairstep fashion. A nanometer is one billionth of a meter and visible only with the aid of a high-power electron microscope.
In their simulations, the researchers stacked 10 of the meta-atoms, then shot light through them at various frequencies. They found that when light encountered the material in a range between 540 terahertz and 590 terahertz, it "stretched" into a nearly straight line and achieved an "effective permittivity" known as epsilon-near-zero.
Effective permittivity refers to the ratio of light's speed through air to its speed as it passes through a material. When light travels through glass, for instance, its effective permittivity is 2.25. Through air or the vacuum of outer space, the ratio is one. That ratio is what is typically referred to as the speed of light.
As light passes through the engineered meta-atoms described by Gao and Yang, however, its effective permittivity reaches a near-zero ratio. In other words, through the medium of these specially designed materials, light actually travels faster than the speed of light. It travels "infinitely fast" through this medium, Yang says.
The meta-atoms also stretch the light. Other materials, such as glass, typically compress optical waves, causing diffraction.
This stretching phenomenon means that "waves of light could tunnel through very small holes," Yang says. "It is like squeezing an elephant through an ultra-small channel."
The wavelength of light encountering a single meta-atom is 500 nanometers from peak to peak, or five times the length of Gao and Yang's specially designed meta-atoms, which are 100 nanometers in length. While the Missouri S&T team has yet to fabricate actual meta-atoms, they say their research shows that the materials could be built and used for optical communications, image processing, energy redirecting and other emerging fields, such as adaptive optics.
Last year, Albert Polman at the FOM Institute for Atomic and Molecular Physics in Amsterdam and Nader Engheta, an electrical engineer at the University of Pennsylvania, developed a tiny waveguide device in which light waves of a single wavelength also achieved epsilon-near-zero. But the Missouri S&T researchers' work is the first to demonstrate epsilon-near-zero in a broadband of 50 terahertz.
"The design is practical and realistic, with the potential to fabricate actual meta-atoms," says Gao. Adds Yang: "With this research, we filled the gap from the theoretical to the practical."
Through a process known as electron-beam deposition, the researchers have built a thin-film wafer from 13 stacked meta-atoms. But those materials were uniform in composition rather than arranged in the stairstep fashion of their modeled meta-atoms.

Thursday, March 3, 2011

Millimeter-wave camera has rapid synthetic focusing

3.1 Electromagnetic SpectrumImage via Wikipedia












http://www.optoiq.com/index/photonics-technologies-applications/lfw-display/lfw-article-
display.articles.optoiq2.photonics-technologies.news.detectors-and_imaging.2011.3.millimeter-wave-camera.html

Mar 3, 2011

Rolla, MO--A millimeter and microwave camera with a fast synthetic focus could soon be used to detect everything from defects in aerospace vehicles or concrete bridges to skin cancer, thanks to its developers at Missouri University of Science and Technology. The millimeter-wave range overlaps the terahertz frequency range of the electromagnetic spectrum, which is used in spectroscopyremote sensing, and security.

Led by Reza Zoughi, the team has developed a handheld camera that can produce synthetically focused images of objects at different planes in front of the camera at speeds of up to 30 images per second. A laptop computer then collects the signal and displays the image in real-time for review. The entire system, powered by a battery similar in size to those used in laptops, can run for several hours. Zoughi's contributions to this field, in part, have earned him the 2011 Joseph F. Keithley Award in Instrumentation and Measurement from the Institute of Electrical and Electronics Engineers (IEEE).

Transmission mode now, reflection next Currently, the camera operates only in the transmission mode: objects must pass between a transmitting source and its collector to be reviewed. The team is working on designing and developing a one-sided version of it, which will make it operate in a similar fashion to a video camera.

"Further down the road, we plan to develop a wide-band camera capable of producing real-time 3-D or holographic images," says Zoughi.

"In the not-so-distant future, the technology may be customized to address many critical inspection needs, including detecting defects in thermal insulating materials that are found in spacecraft heat insulating foam and tiles, space habitat structures, aircraft radomes and composite-strengthened concrete bridge members," he adds.

The technology could help medical professionals detect and monitor a variety of skin conditions in humans, including cancer and burns. It also has the potential to help Homeland Security personnel detect concealed contraband (such as weapons) or reduce the number of passenger pat-downs at airports. Homeowners could see a direct benefit from the technology as it potentially could be used to detect termite damage.

In 2010, a U.S. patent for this technology was issued to Zoughi and four of his colleagues.

Enhanced by Zemanta