Tag Archives: energy

The GTEP Enlightenment


Education


A sustainable future demands scientific solutions. Developing more efficient means to harness energy, bringing renewable energy innovations and exploring revolutionary methods for energy storage and conversion, The Grand Technion Energy Program (GTEP) is guaranteeing the future of us all. 
This future demands highly-skilled graduates in energy science, and as such, GTEP has launched its unique Graduate Energy Studies Program. This is the only advanced multidisciplinary energy program in Israel, and it is also open to international students.


Global Exchange


In addition to nurturing the coming generation, international scientific collaboration with world-class researchers is vital to brainstorm the scientific power challenges. Prof. Harry Tuller of MIT recently delivered a lecture series and spoke about energy, Israel, and the challenges ahead. Global warming, pollution and astronomical increases in world energy demands were on the agenda: you can read more here.
Prof. Harry L. Tuller, MIT, at Technion as part of the Pollack Distinguished Lecture Series

This February, GTEP also hosted Professor Eicke R. Weber – Director of the Fraunhofer Institute for Solar Energy Systems ISE and Professor for Physics/Solar Energy at the Faculty of Mathematics and Physics and at the Faculty of Engineering at the Albert-Ludwigs-University of Freiburg, Germany.

Prof. Weber delivered the lecture: Solar Energy as Key to Future Renewable Energy.

Prof. Eicke R. Weber



Research


Among the many exciting research projects at GTEP, one laboratory received special attention this month: the lab of GTEP Prof. Yair Ein Eli. Prof. Ein Eli has registered two patents for his innovative silicon air battery – an all-green battery alternative that uses silicon – an abundant resource – and which promises 1000s of hours of life. 


While the endorsement of Technion friends means that the dream of developing the silicon air battery to create a rechargeable version for electric cars and a multitude of other applications could well be realized in coming years, first on the horizon is a new generation of batteries for hearing aids. The beauty of the silicon-air battery is that hearing-aid users will only have to change batteries once every several months – as opposed to once a week. Read more here.

Primary-school teacher Hadas Hauz – waiting for the si-air battery.



Alternative Fuels


Prof. Gideon Grader of the faculty of Chemical Engineering and Head of the Grand Technion Energy Program, discusses the development of hydrogen nitrogen alternative fuels to break our dependence on oil. Film made by the American Technion Society.

The Energy Challenge


“I am one of those that believe that we need to do something now, and quickly.”

Prof. Harry L. Tuller, MIT


Global warming, desertification, vastly accelerating levels of CO2 in the atmosphere, rapidly depleting fossil fuel reserves, the disaster of war triggered by energy scarcity, hunger, drought, rising petrol prices… there is no wonder that the word “sustainability” has become one of the most frequently-heard political buzz words in the western world.

It was in anticipation of the variety of future threats to Israel and to the planet that Technion took the initiative in 2007 to set up the Grand Technion Energy Program (GTEP). Under its auspices, Israel’s top minds from a variety of science and engineering faculties are given the facilities and opportunity to think together on how to meet the challenge of escalating global energy demand, and to do the science to turn a crisis into an opportunity.

“I am one of those that believe that we need to do something now, and quickly,” says Harry L. Tuller, Professor of Ceramics and Electronic Materials at MIT. Prof. Tuller was hosted at the Technion by his former post-doc student, Dr. Avner Rothschild of the Faculty of Materials Engineering and an active member of GTEP, and was speaking in the framework of the Israel Pollack Distinguished Lecture Series at Technion’s Faculty of Material Engineering in December 2010.

Prof. Tuller’s research team at MIT focuses on defects, transport and electronic structure of metal oxides and their integration into sensors; fuel cells; solar cells, and MEMS devices.

“We need an astronomical increase in sources of energy,” says Tuller, in the first of two lectures: Electroceramics – strategic materials in the quest to solve the energy crisis. “Energy is a crisis, but it is also a big opportunity. It stimulates you to do things… to do something great for humanity but also for the economy – and for the economic stimulation of Israel. The answers are in the materials. Scientists need to work fast to solve the energy crisis to create clean, affordable energy, to improve living standards and to diminish environmental impact.”

Beyond the rapid depletion of fossil fuels, which before vanishing completely, will involve an escalating price for power, Tuller showed a shocking map to the crowded lecture room of faculty and students. Highlighting the users, the map showed the western world lit up with massive consumption of energy, while the developing world is aiming to reach the same standard of living. As it stand, explains Tuller, we are in trouble as population increases, but given the developing world’s right to also have the luxuries of heat and light, the demand for global energy is going to escalate astronomically. China, for example, is adding an extra coal station each week, says Tuller.

With massive energy use comes a responsibility in first world nations for technological development. “The US are the heavyweights in using energy,” says Tuller, “If developing nations use energy like the US, we will need 6-7 times the power we use today – around 100 terawatts (100 terawatts is equivalent to 100,000 nuclear reactors).

In addition, says Tuller, the environmental and strategic implications of accelerating use of finite fossil fuels can be catastrophic, as seen by the Gulf of Mexico oil spill, and the cumulative effect of rising CO2 levels in the earth’s atmosphere over the past 40 years. “On 22nd December, 2003, the power grid around New York failed,” says Tuller, showing a slide of the Manhattan skyline in total darkness. “Amazingly, there was a 90% decrease in 24 hours of CO2 in the atmosphere – a dramatic correlation.”

Solar power could supply 600 TW of world energy needs, says Tuller, but the question is how fast scientists, industry and government can develop and implement it. Energy from biomass could supply 102 TW; hydroelectric 9 TW; geothermal 11.6 TW; and wind 2-3 TW.

It is therefore necessary, said Tuller to think in both short and long term. In the short term, to do the science to make the use of fossil fuels cleaner and more efficient, and to invest in processes such as thermoelectrics to capture wasted heat. In the long term, says Tuller, solar photovoltaics and hydrogen could give a tremendous alternative energy source.

According to the state-of-the-art right now, about 750,000 km2 (about the size of the state of Arizona) is the land mass needed to satisfy the energy needs of the US through solar power. To give perspective, this is about the same area presently used by highways, says Tuller. Thus at centers of research such as Tuller’s lab at MIT and Rothschild’s lab at the Technion, research is being done to meet the grand energy challenge through improved electroceramic materials for fuels cells and solar energy conversion.

Should Israel relax about the energy crisis, blessed as it is with its new found reserves of natural gas off its Mediterranean coast? “Gas may solve the strategic part of the problem for now,” says Tuller: “It is clean compared to coal or petroleum and is good for everything.” But in the long-term there is no option but to invest in the science to increase efficiency, transport and maximize the methods to harness the power of the sun

For a country this size, Israel has a large visibility in technology and innovation, says Tuller. “There is a high density of highly educated, very clever people. Technion – like MIT – plays a pivotal role as a meeting place for ideas in science and engineering. Other places can lack the insight as to how knowledge can be used and applied. Visible programs like The Grand Technion Energy Program are very useful to create new generations of people who are sensitive to core problem and focused on the challenge.

Tuller, who today has co-authored 40 books and published over 300 papers, spent his post-doc years at Technion – Israel Institute of Technology at the Faculty of Physics. “It was a changing experience,” he says. “There were a lot of possibilities to interact with different groups across the physics department and it broadened my perspective tremendously and extended my vision of things. It is a pleasure to come back home: a great honor.”

Solar Flexi Power

“Tessler’s peptides could lead to flexible solar cells that spread flat and roll up like a blanket.”

An Israeli research team has manufactured new organic semiconductors using proteins designed from scratch in the lab and linking them together in precise chains to create electronic-grade material. The new semiconductors, called electronic peptides, could lead to lighter, cheaper and more flexible electronic devices within the next two years, the researchers say.

The electronic peptides created by Professor Nir Tessler and colleagues at GTEP of theTechnion-Israel Institute of Technology could be used in full color, foldable LED displays with a sharper resolution than today’s computer screens, and large, flexible solar cells that spread flat and roll up like a blanket. The peptides could also be used in sensor devices that detect tiny amounts of disease molecules in the body or toxins in the environment.

Researchers can construct the electronic peptides one building block at a time, which gives them precise control over the semiconductor’s properties, such as its ability to produce a particular color on a flat screen monitor. The block-by-block approach allows the peptide researcher “to prepare the material in the same way that electrical engineers at Intel or IBM prepare a circuit,” Tessler says. “We want 100 percent control that will lead to close to zero errors.”

To build the electronic peptides, the Technion researchers began by imitating nature. In human cells and the rest of the biological world, peptides are created by linking together amino acids, the basic building blocks of proteins. In the lab, Tessler and others used an automatic peptide synthesizer – a computerized machine – to link together artificial combinations of amino acids and create new peptides with semiconductor properties.

“Choosing the right building blocks will give you roughly the properties you are after, and choosing the right sequence [for the blocks] will give you exactly what you need,” Tessler explains.

“The nice thing about peptides is that the complexity of attaching one building block to any other is the same complexity you find in LEGO bricks,” Tessler adds. “You use only one method to connect them all and you know very well how to connect them, with no need to invent a new chemical process every time you want a different sequence.”

The precision manufacturing process creates “electronic grade” material, which means that the material will not lose its response to electrical signals over time like some other organic semiconductors, according to Tessler.

Tessler says the peptides could be integrated into existing electronic devices, and are not intended as a replacement for the silicon-based circuitry in today’s computers. The most popular application for semiconductors like the peptides is in flat screen displays, since these semiconductors use less energy than the materials in current computer monitors. Laptop computers with peptide-powered flat screen displays, for instance, would need to have their batteries recharged less frequently.

Professors Tessler, of the Technion Faculty of Electrical Engineering, Yoav Eichen of the Faculty of Chemistry and Gadi Schuster of the Faculty of Biology have received a patent on the electronic peptides, and a new Israeli company called Peptronics Ltd. will develop the technology for commercial purposes.

“What we have to do now is invest a lot of hard work to fully realize the potential of this new technology. There is no doubt that we will run into problems sooner or later but so far, it’s working like magic,” Tessler says.

Masters of Energy ~ graduates alert



“There is a real and urgent need to challenge young scientists to enter the energy field in order to develop innovative technologies for producing energy and more efficient use of existing energy sources…”


Reprinted from Technion FOCUS 10/10

Technion GTEP has opened a new graduate study program in energy – the first such program approved by Israel’s Council for Higher Education. This interdepartmental program includes the Faculties of Civil and Environmental Engineering, Mechanical Engineering, Chemical Engineering, Materials Engineering, Electrical Engineering, Biotechnology and Food Engineering, Aerospace Engineering, Biology, Chemistry, and Architecture and Town Planning.

“In the Technion, and in the various departments, there is a broad range of activities in energy research and engineering,” said Prof. Yair Ein-Eli, who heads the study program. “The new interdepartmental program is intended to provide an organized framework for these activities and train outstanding master’s and doctoral students to work and do research in the field of energy and engineering.” The goal is to embrace 100 graduate students.

Prof. Gideon Grader, who heads the campuswide Grand Technion Energy Program, stated that the new study program is expected to produce engineering and scientific manpower capable of advancing the field of energy in the future, both in Israel and abroad. “There is a real and urgent need to challenge young scientists to enter the energy field in order to develop innovative technologies for producing energy and more efficient use of existing energy sources,” Grader said.

You can read more about GTEP’s international graduate program here.

A Grand Investment in our Future


“In order to have an impact on global energy issues, we need to invest in the brightest minds and provide them with the best facilities and equipment for their research…”

Technion FOCUS Magazine, October 2010

A $20 million gift to name The Nancy and Stephen Grand Technion Energy Program (GTEP), a campuswide effort to consolidate Technion’s position as a global leader in energy innovation, was announced during the annual International Board of Governors meeting in June 2010, when Stephen Grand received an honorary doctorate. The Grands’ gift also served to bring the American Technion Society’s $1 billion, 13-year, “Shaping Israel’s Future” campaign to a successful completion.

“In order to have an impact on global energy issues, we need to invest in the brightest minds and provide them with the best facilities and equipment for their research. The Technion is ideally positioned for this program because of the outstanding quality of its researchers, and its well-developed ties with industry. We are proud to be with the GTEP at the forefront of this crucial area,” said Stephen Grand of San Francisco.

The primary goal of GTEP is to provide the resources for energy research projects with the potential to lead to new technologies that can lessen the world’s dependence on fossil fuels. GTEP Director Prof. Gideon Grader said, “The infrastructure is set up for interdisciplinary research that brings together researchers from various faculties and supports breakthrough research programs. To date, a carbon-free fuel development lab has been set up and a center for building and characterization of solar cells is being set up. In the near future, there are plans for the establishment of a center for energy accumulation, a center for the development of biological fuels and more. In addition, over the next five years, the program will fund five new faculty members at the Technion in the field of energy.”


For more information, visit the GTEP website.