Showing posts with label Cool Stuff. Show all posts
Showing posts with label Cool Stuff. Show all posts

IBM’s solar cell created from “earth abundant” materials


Researchers at IBM created an inexpensive solar cell from materials that are dirt cheap and easily available. The layer that absorbs sunlight and converts it into electricity is made with copper, tin, zinc, sulfur and selenium. The best part of the solar cell is that it still manages to hit an efficiency of 9.6 percent, which is much higher than earlier attempts to make solar panels using similar materials.
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MIT’s Concentrated Solar Funnel


A group of researchers at MIT devised a way to collect solar energy 100 times more concentrated than a traditional photovoltaic cell. The system could drastically alter how solar energy is collected in the near future as there will no longer be a need to build massive solar arrays to generate large amounts of power. The research work conducted has determined that carbon nanotubes will be the primary instrument used in capturing and focusing light energy, allowing for not just smaller, but more powerful solar arrays.
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Wake Forest University’s Light Pipes


Researchers at the Wake Forest University in North Carolina made a breakthrough by developing organic solar cells with a layer of optical fiber bristles that doubles the performance of the cells in tests. The prototype solar cell has been developed by David Carroll, who is the chief scientist at a spin-off company called FiberCell. The problem with standard flat panels is that some sunlight is lost through reflection. To reduce this effect, the research team took a dramatic approach by stamping optical fibers onto a polymer substrate that forms the foundation of the cell. These fibers, dubbed the “Light Pipes,” are surrounded by thin organic solar cells applied using a dip-coating process, and a light absorbing dye or polymer is also sprayed onto the surface. Light can enter the tip of a fiber at any angle. Photons then bounce around inside the fiber until they are absorbed by the surrounding organic cell.
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Louisiana Tech University’s CNF-PZT Cantilever


Created by a research team at Louisiana Tech University, the CNF-PZT Cantilever is a breakthrough energy harvesting device, which utilizes waste heat energy from electronic gadgets to power them. The device features the use of a carbon nanotube on a cantilever base of piezoelectric materials. The carbon nanotube film absorbs heat and forces the piezoelectric cantilever to bend, which then generates an electric current in the material. The device is so small that thousands of small CNF-PZT Cantilever devices can be designed into devices, allowing them to harvest their own wasted energy.
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New Energy Technologies’ see-through glass SolarWindow


New Energy Technologies developed a working prototype of the world’s first glass window capable of generating electricity. Until now, solar panels have remained opaque, with the prospect of creating a see-through glass window capable of generating electricity limited by the use of metals and other expensive processes, which block visibility and prevent light from passing through glass surfaces. The technology has been made possible by making use of the world’s smallest working organic solar cells, developed by Dr. Xiaomei Jiang at the University of South Florida. Unlike conventional solar systems, New Energy’s solar cells generate electricity from both natural and artificial light sources, outperforming today’s commercial solar and thin-film technologies by as much as 10-fold.
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Purdue University’s system to harvest heat from car’s exhaust


Researchers at Purdue University created a system that harvests heat from a car’s exhaust in order to generate electricity and reduce the vehicle’s fuel consumption. The system converts waste heat into electricity, which is then fed into the vehicle’s onboard batteries to reduce engine load and fuel consumption.
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Innowattech’s Piezoelectric IPEG PAD


Innowattech recently created piezoelectric generators that can be used as normal rail pads, but generate renewable energy whenever trains pass on them. The company tested the technology by replacing 32 railway pads with new IPEG PADs, where the pads were able to generate enough renewable electricity to determine the number of wheels, weight of each wheel and the wheel’s position. In addition the speed of the train and wheel diameter could also be calculated. The company states that areas of railway track that get between 10 and 20 ten-car trains an hour can be used to produce up to 120KWh of renewable electricity per hour, which can be used by the railways or transferred to the grid.
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CSIRO’s Brayton Cycle Project


Australia’s national science agency, CSIRO, developed a technology that requires only sunlight and air to generate electricity. The system is ideal for areas that face acute water shortages. The solar Brayton Cycle project replaces use of concentrated sun rays to heat water into high-pressure steam to drive a turbine with solar energy to create a solar thermal field. The technology focuses the sun’s rays projected onto a field of mirrors knows as heliostats onto a 30-meter (98 ft) high solar tower to heat compressed air, which subsequently expands to through a 200kW turbine to generate electricity.
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A LED Lamp for the Two Billion with No Electricity



A number of companies are thinking about how to provide lighting to the two billion people on the planet who still have no electricity to read at night or do homework. Solar power and LED could be the answer.

In the third world, people rely on kerosene lamps and heavy fuel for lighting at night, but it damages the health of people breathing it, and is increasingly expensive, and is a greenhouse gas problem.Here’s one that can be hung up at night to provide light, and can be left out during the day to soak up the sun’s rays on its four solar panels.

The Nokero (from “no kerosene”) light has four small solar panels and is about the size of a light bulb, and provides four hours of light after dark. It has a circuit to prevent it from turning on in the daytime. It’s durable and rain can’t damage it.
It sells for about $15 for one, $10 for 48 or more, and they hope to get it down to $6 once they can make thousands at a time for NGOs and other non-profits to distribute throughout the third world.
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If you thought that manure was just for spreading on fields or in the garden, or just to provide an interesting smell during a drive through the country, it’s time to learn a thing or two. For years progressive farmers have been harnessing a byproduct of their animals’ manure, methane, and turning it into electricity. Some farms with several hundred cows have even been known to power small communities. But what about our, ahem, byproducts, our own human manure? It is little different from that of a cow’s, save for perhaps a little less hay, and will produce methane in the right conditions, ripe for harvesting to be burned and used to generate power through natural gas plants. Several small projects already exist in the US, but the city of San Antonio, Texas, is the first to take on a project of commercial scale to do just that.

The process is quite simple, and we’re surprised that existing sewage treatment plants have not already adopted the practice as it would not only save them money, but also create an additional revenue stream, but it has now begun, and the city is planning on using the 140,000 tons of human waste to produce fuel to send to the open market. They estimate that this amount of waste will yield a massive 1.5 million cubic feet of natural gas (processed methane) daily. That’s a lot of gas, and one that will be an arguably close to carbon neutral, when burned in a natural gas power plant. Either way the combustion of the methane is a great thing for the environment. Instead of just letting the gas escape as it might do if unharnessed, it wil be used to provide electricity, offsetting the fossil-based natural gas that would otherwise take its place. Also, since methane is a much more dangerous emission than CO2 when it comes to retaining heat in the atmosphere, there’s another plus for cooling down the planet.

The city also expects to recycle about 90% of the material that goes down the drain in its bathrooms, the liquids being used for irrigation and solids into compost.
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Wind Turbine Elec. Tower




I’m sure many environmentalists have passed power line towers while cruising in vehicles and wondered aloud, “Why can’t we just throw some wind turbines up there?” In fact, earlier last year, Ericsson unveiled the first-ever cell phone tower with a vertical-axis wind turbine integrated. If we can do it in cell phone towers, why not transmission towers?
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New solar fuel machine 'mimics plant life'


A prototype solar device has been unveiled which mimics plant life, turning the Sun's energy into fuel.

By Neil Bowdler
Science reporter, BBC News

The machine uses the Sun's rays and a metal oxide called ceria to break down carbon dioxide or water into fuels which can be stored and transported.

Conventional photovoltaic panels must use the electricity they generate in situ, and cannot deliver power at night.

Details are published in the journal Science.

The prototype, which was devised by researchers in the US and Switzerland, uses a quartz window and cavity to concentrate sunlight into a cylinder lined with cerium oxide, also known as ceria.

Ceria has a natural propensity to exhale oxygen as it heats up and inhale it as it cools down.

If as in the prototype, carbon dioxide and/or water are pumped into the vessel, the ceria will rapidly strip the oxygen from them as it cools, creating hydrogen and/or carbon monoxide.

Hydrogen produced could be used to fuel hydrogen fuel cells in cars, for example, while a combination of hydrogen and carbon monoxide can be used to create "syngas" for fuel.

It is this harnessing of ceria's properties in the solar reactor which represents the major breakthrough, say the inventors of the device. They also say the metal is readily available, being the most abundant of the "rare-earth" metals.

Methane can be produced using the same machine, they say.

Refinements needed
The prototype is grossly inefficient, the fuel created harnessing only between 0.7% and 0.8% of the solar energy taken into the vessel.

Most of the energy is lost through heat loss through the reactor's wall or through the re-radiation of sunlight back through the device's aperture.

But the researchers are confident that efficiency rates of up to 19% can be achieved through better insulation and smaller apertures. Such efficiency rates, they say, could make for a viable commercial device.

"The chemistry of the material is really well suited to this process," says Professor Sossina Haile of the California Institute of Technology (Caltech). "This is the first demonstration of doing the full shebang, running it under (light) photons in a reactor."

She says the reactor could be used to create transportation fuels or be adopted in large-scale energy plants, where solar-sourced power could be available throughout the day and night.

However, she admits the fate of this and other devices in development is tied to whether states adopt a low-carbon policy.

"It's very much tied to policy. If we had a carbon policy, something like this would move forward a lot more quickly," she told the BBC.

It has been suggested that the device mimics plants, which also use carbon dioxide, water and sunlight to create energy as part of the process of photosynthesis. But Professor Haile thinks the analogy is over-simplistic.

"Yes, the reactor takes in sunlight, we take in carbon dioxide and water and we produce a chemical compound, so in the most generic sense there are these similarities, but I think that's pretty much where the analogy ends."
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See through solar panel

Test Results Show New Energy’s See-Thru SolarWindow™ Cells Surpass Thin-Film and Solar in Artificial Light

Company’s ultra-small solar cells for use in its transparent SolarWindow™ capable of generating electricity, outperform today’s commercial solar and thin-film technologies by as much as 10-fold in generating electricity from artificial light.

Burtonsville, MD - June 24 2009 - New Energy Technologies, Inc. (Symbol: NENE), a next-generation alternative and renewable energy developer, today announced that new tests of the Company’s ultra-small solar cells for use in its transparent SolarWindow™ have demonstrated substantially superior performance over current thin-film and solar photovoltaic technologies at generating electricity from artificial light - an important advantage over conventional solar technologies which are limited by their capacity to function well where exposure to direct sunlight is available. “One of the biggest issues with today’s solar products is their dependency on direct sunlight, which our cells have demonstrated the potential capacity to overcome,” explained Mr. Meetesh V. Patel, Esq., President and CEO of New Energy Technologies, Inc.

“We’re now actively working to coat these cells onto transparent glass in order to fabricate our SolarWindows™, which generate electricity and have the potential to be installed virtually anywhere that either direct sunlight or artificial lighting such as fluorescent systems emit visible light. In contrast, today’s building-integrated solar and photovoltaic products are limited to installation on south-facing surfaces, as is the case with currently-available solar materials tested in these newest experiments”.

In a series of new experiments, researchers repeatedly tested New Energy’s ultra-small solar cells on a 1”x1” substrate against today’s popular solar materials for their capacity to produce electricity under varying artificial light conditions, mimicking the levels of light exposure in homes and commercial offices. In every case, New Energy’s solar cells, the smallest reported organic solar cells of their kind in the world, exponentially outperformed all of the conventional materials tested.

Under normal office lighting conditions, without the benefit of outside natural light from windows, New Energy’s ultra-small solar cells produced:

Almost 2-fold greater output power density than monocrystalline silicon, an established commercial solar cell material;
More than 8-fold greater output power density than copper-indium-selenide, known for its high optical absorption coefficients and versatile optical and electrical characteristics; and
More than 10-fold greater output power density than flexible thin-film amorphous-silicon, a popular ‘second-generation’ solar thin-film material.
New Energy's solar cells generate electricity not only from the visible radiation found in sunlight but also by using the visible light found in artificial illumination, such as the fluorescent lighting typically installed in offices and commercial buildings. While the majority of today's solar cells can only be installed where direct sunlight is available, New Energy's cells could be installed close to any source of visible light.


Researchers Apply Coating to Commercial Glass, Demonstrating Transparency of New Energy's SolarWindow™ Capable of Generating Electricity, Currently Under Development.

Source: New Energy Technologies, Inc. New Energy’s SolarWindow™ technology makes use of an organic solar array, which has the same desirable electrical properties as silicon, yet has a considerably better capacity to ‘optically absorb’ photons from light to generate electricity and achieves transparency through the innovative use of conducting polymers. Each solar array is composed of a series of twenty ultra-small solar cells measuring less than ¼ the size of a grain of rice each. The organic solar cells are fabricated using environmentally-friendly hydrogen-carbon based materials, and successfully produce electricity, as demonstrated in a peer-reviewed study in the Journal of Renewable and sustainable Energy of the American Institute of Physics.

(Click here to view the
study.)

The superior optical absorption properties of New Energy’s ultra-small solar cells enables development of an ultra-thin film (only 1/1000th the thickness of a human hair, or 1/10th of a micrometer) that can be utilized to produce a transparent solar window. In photovoltaic applications such as see-thru windows, where transparency is a primary concern, today’s thin film solar cells simply cannot be utilized to produce a transparent solar window for application in homes, offices, and commercial buildings.
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Einstein was right, you can be in two places at once



By Steve Connor

A device that exists in two different states at the same time, and coincidentally proves that Albert Einstein was right when he thought he was wrong, has been named as the scientific breakthrough of the year.

The machine, consisting of a sliver of wafer-thin metal, is the first man-made device to be governed by the mysterious quantum forces that operate at the level of atoms and sub-atomic particles.

Normal, everyday objects obey the laws of conventional Newtonian physics, named after Sir Isaac Newton, but these rules break down on the sub-atomic scale and a whole new branch of theoretical physics had to be invented to explain what happens on this sub-microscopic level.

Einstein was the first to embrace quantum physics but later rejected it on the grounds that it made everything unpredictable – "God does not play dice with the universe," he famously stated.

However, a range of effects has been recorded over the past few years that can only be explained by quantum mechanics and in March scientists were able to build the first device that seemed to follow the quantum rules that Einstein was the first to realise applied to light waves.

The breakthrough, recognised by the journal Science as the most significant this year, opens the way to a range of practical developments such as quantum computers that are far faster than conventional processors and which could never be hacked into because they handle and transmit data using an unbreakable form of encryption.

"Quantum theory dictates that a very tiny thing can absorb energy only in discrete amounts, can never sit perfectly still, and can literally be in two places at once," said Adrian Cho, a writer for Science. "This represents the first time that scientists have demonstrated quantum effects in the motion of a human-made object. It opens up a variety of possibilities ranging from new experiments that meld quantum control over light, electrical currents and motion to, perhaps someday, tests of the bounds of quantum mechanics and our sense of reality."

The breakthrough was achieved by physicists Andrew Cleland and John Martinis from the University of California at Santa Barbara. Their machine consisted of a tiny metal paddle made of semiconductor material just visible to the naked eye. By supercooling the device to just above absolute zero (minus 273C), then raising its energy by a "single quantum", they made it vibrate by getting thicker and thinner at a frequency of some 6 billion times a second, producing a detectable electric current. They even managed to get it to vibrate in two energy states at once, both a lot and a little – a phenomenon allowed only by the rules of quantum mechanics.

"Physicists still haven't achieved a two-places-at-once state with a tiny object like this one," Mr Cho said. "But now that they have reached this simplest state of quantum motion, it seems a whole lot more obtainable."
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A real green school

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More on Mycobond


You can now trust mushrooms for the safety of your goods or fragile objects as these miraculous plants expose yet another fabulous facet of their personality. Mushrooms are known for their efficient absorption properties when it comes to BDP, but now they will save the unnecessary wastage of paper in the packaging industry. Ecovative Design has devised these special mushrooms which can be used for packaging and spares the unnecessary use of paper.

This low-energy material is called Mycobond and it is heat resistant and fire resistant and this feature upstages it over paper wraps. These Mycobond covers are not only tough but are also cushy enough to provided sufficient protection to your fragile goods. Mycobond is discovered and developed by two Rensselaer Polytechnic University graduation students and National Science Foundation (NSF) assisted them in doing so.

It is an excellent substitute for the traditional form of foam packing and at the same time it is easily biodegradable. If Mycobond catches up with people then the other forms of electronics packing and insulation packing will come to an end!
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Mycobond


Mycobond is a mycological bio-composite that can be used in a wide variety of applications. Instead of conventional manufacturing processes, Mycobond uses mycelium—which is essentially the root system of a mushroom—to transform loose aggregates into strong composites. This process can be varied by using different species of fungus and mixtures of aggregates in order to make a composite with an optimal density, strength, appearance, and performance for the specific application.
Additionally, Mycobond represents a low-embodied-energy manufacturing process as the material self assembles at room temperature and pressure in the dark. Furthermore, Mycobond upcycles resources like rice hulls, cotton burrs, and buckwheat hulls that are otherwise thrown away, transforming them into valuable products, including rigid board insulation and protective packaging buffers.
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World's First Village that Runs on 100% Solar



From Oilgae
It's been one of the ironies in the energy equation - we have the energy from the sun all around us, many times more than what all of together on earth require, yet capturing and utilising that energy has been much more difficult and costly than one would like.

This has not stopped the solariphiles from looking forward to the day when the sun will power most of, or all, our energy needs.

Well, while that day might still be far off for most of the world, it already has arrived for a small village in South Korea. This village has achieved what even the most powerful countries in the world are still struggling to accomplish: total energy independence with clean technology.

Donggwang is a village on the western half of the island Jeju-do in South Korea. On the roof of each of the 40 houses in Donggwang lies a large beds of solar panels. And this includes even the small, local elementary school!

A typical house roof in the village has a two kilowatt solar installation. The photovoltaic panels thus fitted produce enough energy to power the entire area.
Now the important question is, how much of this success is translatable to the rest of the world? Are there some specific advantages that this tiny South Korean village has that has facilitated it to become 100% solar? I could not see anything unique about this village, so there is hope that this is replicable. We however have to keep in mind that this is a small village - they are talking about 40 houses in all, certainly small by any standards!

One piece of info gleaned from the articles could provide a hint: "In 2004, the government helped to install solar systems in Donggwang, paying 70% of the installation fees." Now, this could indeed be a great help as it is well known that installation costs for solar could in fact be a major stumbling block to its widespread adoption.

While we spend our time analysing whether this small success could lead to a big leap for solar energy adoption in the rest of the world, hats off to Donggwang for showing us the light at the end of the tunnel, to use a pun!
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Cool Stuff from MIT

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World’s First Wireless Electric Car Charger Launches in UK

IPT (Induction Power Transfer) is the name of the world’s first commercially-available wireless electric car charging system, just launched in London. The brainchild of UK start-up HaloIPT wishes to electrify the England’s M25 motorway by using magnetic induction, a principle discovered in the 1800s.

The company has designed the IPT to be functional on any weather conditions and even if the driver doesn’t align the car properly with the pads embedded in the asphalt. They also say it has a performance closely equal to that of a wired charger, though I doubt it can brag any efficiency higher than 80 percent at a few centimeters gap.

HaloIPT used a car named Evie, based on the Citroen C1 (ultra compact) to test the charging performance of the IPT. Fully charging from 20 percent took the Evie about six hours, and the energy came from a regular household socket. The company also says their system can charge even at distances of up to 40 centimeters.

“We’re using IPT to break down the barriers to mass-market adoption of electric cars,” says HaloIPT’s CEO, Anthony Thomson. “Keeping electric vehicle costs down is a key priority for us.” He also claims that a car using wireless charging is going to have a third of a today petrol car’s carbon emission by 2030, including the manufacturing and usage processes.
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