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Showing posts with label classic. Show all posts
Showing posts with label classic. Show all posts

Sunday, November 27, 2011

A light wave of innovation to advance solar energy: Researchers adapt classic antennas to harness more power from the sun

ScienceDaily (Nov. 10, 2011) — Some solar devices, like calculators, only need a small panel of solar cells to function. But supplying enough power to meet all our daily needs would require enormous solar panels. And solar-powered energy collected by panels made of silicon, a semiconductor material, is limited -- contemporary panel technology can only convert approximately seven percent of optical solar waves into electric current.

Profs. Koby Scheuer, Yael Hanin and Amir Boag of Tel Aviv University's Department of Physical Electronics and its innovative new Renewable Energy Center are now developing a solar panel composed of nano-antennas instead of semiconductors. By adapting classic metallic antennas to absorb light waves at optical frequencies, a much higher conversion rate from light into useable energy could be achieved. Such efficiency, combined with a lower material cost, would mean a cost-effective way to harvest and utilize "green" energy.

The technology was recently presented at Photonics West in San Francisco and published in the conference proceedings.

Receiving and transmitting green energy

Both radio and optical waves are electromagnetic energy, Prof. Scheuer explains. When these waves are harvested, electrons are generated that can be converted into electric current. Traditionally, detectors based on semiconducting materials like silicon are used to interface with light, while radio waves are captured by antenna.

For optimal absorption, the antenna dimensions must correspond to the light's very short wavelength -- a challenge in optical frequencies that plagued engineers in the past, but now we are able to fabricate antennas less than a micron in length. To test the efficacy of their antennas, Prof. Scheuer and his colleagues measured their ability to absorb and remit energy. "In order to function, an antenna must form a circuit, receiving and transmitting," says Prof. Scheuer, who points to the example of a cell phone, whose small, hidden antenna both receives and transmits radio waves in order to complete a call or send a message.

By illuminating the antennas, the researchers were able to measure the antennas' ability to re-emit radiation efficiently, and determine how much power is lost in the circuit -- a simple matter of measuring the wattage going in and coming back out. Initial tests indicate that 95 percent of the wattage going into the antenna comes out, meaning that only five percent is wasted.

According to Prof. Scheuer, these "old school" antennas also have greater potential for solar energy because they can collect wavelengths across a much broader spectrum of light. The solar spectrum is very broad, he explains, with UV or infrared rays ranging from ten microns to less than two hundred nanometers. No semiconductor can handle this broad a spectrum, and they absorb only a fraction of the available energy. A group of antennas, however, can be manufactured in different lengths with the same materials and process, exploiting the entire available spectrum of light.

When finished, the team's new solar panels will be large sheets of plastic which, with the use of a nano-imprinting lithography machine, will be imprinted with varying lengths and shapes of metallic antennas.

Improving solar power's bottom line

The researchers have already constructed a model of a possible solar panel. The next step, says Prof. Scheuer, is to focus on the conversion process -- how electromagnetic energy becomes electric current, and how the process can be improved.

The goal is not only to improve the efficiency of solar panels, but also to make the technology a viable option in terms of cost. Silicon is a relatively inexpensive semiconductor, but in order to obtain sufficient power from antennas, you need a very large panel -- which becomes expensive. Green energy sources need to be evaluated not only by what they can contribute environmentally, but also the return on every dollar invested, Prof. Scheuer notes. "Our antenna is based on metal -- aluminium and gold -- in very small quantities. It has the potential to be more efficient and less expensive."

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The above story is reprinted from materials provided by American Friends of Tel Aviv University.

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Saturday, September 10, 2011

WOWee ONE Classic Portable Speaker

March 27, 2011 - Laptops and smartphones are more compact and more capable than ever, but the built-in sound from these mobile devices hasn't, in general, improved. If you need better audio quality on the go (whether for work or personal reasons), the WOWee ONE Classic portable speaker, with its impressive (and innovative) bass production is a great choice.

The WOWee ONE Classic portable speaker transforms any flat surface into a speaker, using an innovative gel pad on the bottom of the device to remarkably boost low bass frequencies. The result is a richer and warmer audio experience than you might expect from such a compact, portable device.

Although it's not the smallest or most lightweight portable speaker around, the WOWee ONE is one of the most satisfying and fun to use for gadget geeks and audiophiles (and, perhaps, engineering/physics majors as well). The WOWee ONE is cleverly designed to vibrate and transform the surfaces it's placed on into a makeshift subwoofer. Experimenting with the WOWee ONE is part of the fun: how does a song sound when the portable speaker is placed against a glass surface versus on a wooden one? Which materials brought out the best sound?

The WOWee ONE got lots of real-life testing in my household in the last few months. It can provide rich, loud sound on the go and also when entertaining groups of friends at home. We placed the speaker on an antique piano, hardwood floor, glass window, wooden coffee table with hollow drawers, and also held the speaker up against a thin wall (which sounded the best to us). WOWee makes a mount to secure the speaker to a wall or another favorite surface, so you can optimize the sound coming out of the speakers.

Whichever surface it was placed on, the sound coming out of the WOWee ONE was stunning--not tinny or weak like other portable speaker options. The unit is rechargeable via mini-USB port or power adapter and it can also last an incredible 20 hours or more on a charge.

At $79.99 MSRP at the time of this writing, the WOWee ONE is targeted for those mobile users who really care about the quality of the sound from their mobile devices. My only criticism of the speaker is that it's a bit heavy and thick for mobile users who want to travel light, but WOWee is coming out with a SLIM version that sacrifices some battery life (10 hours vs. 20) in exchange for being thinner and lighter.

Pick up a WOWee ONE and start experimenting with the sound transmission from various surfaces, and you should find that the portable speaker really delivers.


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Tuesday, August 16, 2011

Scientist creates a drivable version of classic OutRun video game

 A scientist has created a version of the classic OutRun driving video game, that can actually be driven on the road (Photo: University of California at Irvine)

Some people who spent their youth in the 80s miss that era, and wish that things now were like they were then. Well, those people might be interested in the University of California at Irvine's OutRun Project. With the ultimate aim of developing gaming therapy systems for people such as quadriplegics, scientists involved in the project have created a kind of combination electric golf cart and arcade-style video game console. Players can actually drive the cart down the road, while an augmented reality feature displays the real-life road on the screen in front of them, but in the form of Sega's classic 8-bit road racing game, OutRun.


Designed by UC Irvine research scientist Garnet Hertz, the cart features dual forward-looking video cameras that scan the environment in front of the car, while custom software analyzes their output, searching for anything that looks like a road. That software then displays the real-world road in real time on the gaming console's screen, in the graphics style of the original game.


It appears that the system doesn't recognize things like other vehicles or pedestrians, however, so it probably wouldn't be a good idea to take the cart out in the traffic.


While the OutRun Project itself looks like it was a lot of fun to work on, UCI researchers state that it has shown them "whole new ways of thinking about how game-based virtual worlds can be embodied into physical devices in order to create new experiences." This could in turn lead to new game-based therapies for people confined to electric wheelchairs, where they would actually play the game as their chair was in motion, instead of just sitting at a computer.


... and for all those people who wish the world was still like it was in 80s, Hertz is also proposing an iPhone augmented reality app that would let users see the world around them as if it were part of the retro OutRun world.


The video below shows the cart in motion, and provides more information on how it works.


Source: Dvice


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