Here we go again. Oil prices are threatening to derail our already weak economy. What is most distressing about the whole thing is that the oil producing countries are not the only problem. Transportation companies, speculators and greedy refiners all share in the volatility of this commodity -- and I didn’t even mention our own government.
But we have a weapon don’t we? Renewable clean energy is available 24/7. And we also have the power of knowledge because these volatile times increase our awareness. It’s like free advertizing. Every time the talking heads say that the price of gas is going to be much higher this summer and fall, I can hear somebody saying, “Honey, let’s look at a Chevy Volt or a Nissan Leaf. Or how about a model from Think, Tesla or a Coda.”
These times are made for change. All over the world people want change and the freedom it brings. We need to disconnect political volatility abroad from energy pricing here. I am an optimist, so I believe that the market power of free countries in the world is critical in bringing stability to the energy markets. The result is that wealth will be distributed and not concentrated in a wealthy few.
Let’s raise our voices to push renewable, push renewable, push renewable. The fact is that politicians need your vote to stay in power, no matter what the lobbyists say. If the oil companies want to throw their weight around by using lobbyists, so be it. Contact your politicians. Tell them they will not get your vote unless they take steps to change the effect of energy volatility in this country. That, my friends, is grass roots lobbying!
The politicians seem to be lost in these difficult times. But we can guide them through our calls, emails and constant reminders that they work for us.
Make it happen!
George Lopez
Executive Director
The Solar and Wind Expo
"make green a reality" visit http://www.thesolarandwindexpo.com/
Monday, February 28, 2011
High oil prices present an oportunity!
Labels:
EV,
High oil prices,
Renewable Energy
Wednesday, February 23, 2011
SAE International's New Vehicle Electrification Website
Strong initial response to SAE International's new Vehicle Electrification website (http://ev.sae.org/) is proving the time was right to launch the industry's most complete source of engineering information related to Hybrid and Electric Vehicle development and technologies.
Cariello said the new website, launched last fall and accessible to the public, was the logical response to the increasing global focus on developing electrified vehicles and their energy infrastructure. The new site includes the following resources related to hybrids, EVs, and related technology:
- Standards
- Technical papers
- Professional events
- Books
- Research Reports
- Training
- A quarterly digital "magazine" covering the latest EV and HEV developments.
"This site is a valuable resource for mobility engineers seeking the most up-to-date information on standards, technology advances, product solutions, supplier news, vehicle development trends and insights from the most plugged-in experts in the electrified-vehicles field," Cariello noted.
He characterized the decision to launch the website and e-magazine as "a no-brainer," given the growing industry demand for high-quality, trusted technical information—SAE International's hallmark for more than 100 years.
A key feature of http://ev.sae.org/ is the new digital magazine that will initially appear quarterly. The first issue covered development of the 2011 Chevrolet Volt, the industry's first high-volume plug-in hybrid vehicle. The issue was conceived and written by Lindsay Brooke, a senior editor with SAE International's magazines group.
"Volt is in the vanguard of a new generation of electrified vehicles being developed by every global OEM to meet stringent emissions and fuel-efficiency regulations," Brooke explained. "SAE International's global engineering audience is keenly interested in the advanced technologies—batteries, power control, electric machines, systems integration, materials—being driven by these vehicle programs."
The Volt digital magazine is the result of Brooke's four years of reporting on the vehicle's development, including dozens of interviews with the GM and supplier engineers who brought the car to production despite many challenges.
"Visitors to http://ev.sae.org/ can expect each digital magazine to feature detailed, informative coverage of the most technically interesting new hybrids and EVs," Brooke revealed. "Positive feedback regarding the Volt issue from readers confirms that we've created a product that mobility engineers find very useful to them in their jobs."
To subscribe to the new e-magazine, visit the vehicle electrification Web site and click on the cover of the magazine in the upper left corner.
CONTACT: Shawn Andreassi, Manager, Corporate Communications, SAE International, +1-724-772-8522, +1-724-612-4992, shawna@sae.org
"make green a reality" visit http://www.thesolarandwindexpo.com/
Labels:
electric vehicle,
SAE
Monday, February 21, 2011
Stanford researchers develop new technology for cheaper, more efficient solar cells
The sun provides more than enough energy for all our needs, if only we could harness it cheaply and efficiently. Solar energy could provide a clean alternative to fossil fuels, but the high cost of solar cells has been a major barrier to their widespread use.
Stanford researchers have found that adding a single layer of organic molecules to a solar cell can increase its efficiency three-fold and could lead to cheaper, more efficient solar panels. Their results were published online in ACS Nano on Feb. 7.
Professor of chemical engineering Stacey Bent first became interested in a new kind of solar technology two years ago. These solar cells used tiny particles of semiconductors called "quantum dots." Quantum dot solar cells are cheaper to produce than traditional ones, as they can be made using simple chemical reactions. But despite their promise, they lagged well behind existing solar cells in efficiency.
"I wondered if we could use our knowledge of chemistry to improve their efficiency," Bent said. If she could do that, the reduced cost of these solar cells could lead to mass adoption of the technology.
Bent will discuss her research on Sunday, Feb. 20, at 8:30 a.m. Eastern, at the annual meeting of the American Association for the Advancement of Science in Washington, D.C.
In principle, quantum dot cells can reach much higher efficiency, Bent said, because of a fundamental limitation of traditional solar cells.
Solar cells work by using energy from the sun to excite electrons. The excited electrons jump from a lower energy level to a higher one, leaving behind a "hole" where the electron used to be. Solar cells use a semiconductor to pull an electron in one direction, and another material to pull the hole in the other direction. This flow of electron and hole in different directions leads to an electric current.
But it takes a certain minimum energy to fully separate the electron and the hole. The amount of energy required is specific to different materials and affects what color, or wavelength, of light the material best absorbs. Silicon is commonly used to make solar cells because the energy required to excite its electrons corresponds closely to the wavelength of visible light.
But solar cells made of a single material have a maximum efficiency of about 31 percent, a limitation of the fixed energy level they can absorb.
Quantum dot solar cells do not share this limitation and can in theory be far more efficient. The energy levels of electrons in quantum dot semiconductors depends on their size – the smaller the quantum dot, the larger the energy needed to excite electrons to the next level.
So quantum dots can be tuned to absorb a certain wavelength of light just by changing their size. And they can be used to build more complex solar cells that have more than one size of quantum dot, allowing them to absorb multiple wavelengths of light.
Because of these advantages, Bent and her students have been investigating ways to improve the efficiency of quantum dot solar cells, along with associate Professor Michael McGehee of the department of Materials Science and Engineering.
The researchers coated a titanium dioxide semiconductor in their quantum dot solar cell with a very thin single layer of organic molecules. These molecules were self-assembling, meaning that their interactions caused them to pack together in an ordered way. The quantum dots were present at the interface of this organic layer and the semiconductor. Bent's students tried several different organic molecules in an attempt to learn which ones would most increase the efficiency of the solar cells.
But she found that the exact molecule didn't matter – just having a single organic layer less than a nanometer thick was enough to triple the efficiency of the solar cells. "We were surprised, we thought it would be very sensitive to what we put down," said Bent.
But she said the result made sense in hindsight, and the researchers came up with a new model – it's the length of the molecule, and not its exact nature, that matters. Molecules that are too long don't allow the quantum dots to interact well with the semiconductor.
Bent's theory is that once the sun's energy creates an electron and a hole, the thin organic layer helps keep them apart, preventing them from recombining and being wasted. The group has yet to optimize the solar cells, and they have currently achieved an efficiency of, at most, 0.4 percent. But the group can tune several aspects of the cell, and once they do, the three-fold increase caused by the organic layer would be even more significant.
Bent said the cadmium sulfide quantum dots she is currently using are not ideal for solar cells, and the group will try different materials. She said she would also try other molecules for the organic layer, and could change the design of the solar cell to try to absorb more light and produce more electrical charge. Once Bent has found a way to increase the efficiency of quantum dot solar cells, she said she hopes their lower cost will lead to wider acceptance of solar energy.
"make green a reality" visit http://www.thesolarandwindexpo.com/
Stanford researchers have found that adding a single layer of organic molecules to a solar cell can increase its efficiency three-fold and could lead to cheaper, more efficient solar panels. Their results were published online in ACS Nano on Feb. 7.
Professor of chemical engineering Stacey Bent first became interested in a new kind of solar technology two years ago. These solar cells used tiny particles of semiconductors called "quantum dots." Quantum dot solar cells are cheaper to produce than traditional ones, as they can be made using simple chemical reactions. But despite their promise, they lagged well behind existing solar cells in efficiency.
"I wondered if we could use our knowledge of chemistry to improve their efficiency," Bent said. If she could do that, the reduced cost of these solar cells could lead to mass adoption of the technology.
Bent will discuss her research on Sunday, Feb. 20, at 8:30 a.m. Eastern, at the annual meeting of the American Association for the Advancement of Science in Washington, D.C.
In principle, quantum dot cells can reach much higher efficiency, Bent said, because of a fundamental limitation of traditional solar cells.
Solar cells work by using energy from the sun to excite electrons. The excited electrons jump from a lower energy level to a higher one, leaving behind a "hole" where the electron used to be. Solar cells use a semiconductor to pull an electron in one direction, and another material to pull the hole in the other direction. This flow of electron and hole in different directions leads to an electric current.
But it takes a certain minimum energy to fully separate the electron and the hole. The amount of energy required is specific to different materials and affects what color, or wavelength, of light the material best absorbs. Silicon is commonly used to make solar cells because the energy required to excite its electrons corresponds closely to the wavelength of visible light.
But solar cells made of a single material have a maximum efficiency of about 31 percent, a limitation of the fixed energy level they can absorb.
Quantum dot solar cells do not share this limitation and can in theory be far more efficient. The energy levels of electrons in quantum dot semiconductors depends on their size – the smaller the quantum dot, the larger the energy needed to excite electrons to the next level.
So quantum dots can be tuned to absorb a certain wavelength of light just by changing their size. And they can be used to build more complex solar cells that have more than one size of quantum dot, allowing them to absorb multiple wavelengths of light.
Because of these advantages, Bent and her students have been investigating ways to improve the efficiency of quantum dot solar cells, along with associate Professor Michael McGehee of the department of Materials Science and Engineering.
The researchers coated a titanium dioxide semiconductor in their quantum dot solar cell with a very thin single layer of organic molecules. These molecules were self-assembling, meaning that their interactions caused them to pack together in an ordered way. The quantum dots were present at the interface of this organic layer and the semiconductor. Bent's students tried several different organic molecules in an attempt to learn which ones would most increase the efficiency of the solar cells.
But she found that the exact molecule didn't matter – just having a single organic layer less than a nanometer thick was enough to triple the efficiency of the solar cells. "We were surprised, we thought it would be very sensitive to what we put down," said Bent.
But she said the result made sense in hindsight, and the researchers came up with a new model – it's the length of the molecule, and not its exact nature, that matters. Molecules that are too long don't allow the quantum dots to interact well with the semiconductor.
Bent's theory is that once the sun's energy creates an electron and a hole, the thin organic layer helps keep them apart, preventing them from recombining and being wasted. The group has yet to optimize the solar cells, and they have currently achieved an efficiency of, at most, 0.4 percent. But the group can tune several aspects of the cell, and once they do, the three-fold increase caused by the organic layer would be even more significant.
Bent said the cadmium sulfide quantum dots she is currently using are not ideal for solar cells, and the group will try different materials. She said she would also try other molecules for the organic layer, and could change the design of the solar cell to try to absorb more light and produce more electrical charge. Once Bent has found a way to increase the efficiency of quantum dot solar cells, she said she hopes their lower cost will lead to wider acceptance of solar energy.
"make green a reality" visit http://www.thesolarandwindexpo.com/
Labels:
Solar Panels,
Stanford
Tuesday, February 15, 2011
Plug-in Electric Vehicle Sales Forecasts by State, Metropolitan Statistical Area, and Selected Utility Service Territories
Pike Research forecasts an annual plug-in electric vehicle (PEV) market in the United States of about 359,000 vehicles by 2017. Unfortunately, for many industry players who are working on setting up recharging station networks, developing product and production plans, and allocating precious marketing resources, this top-level forecast does not offer specific enough data. As government officials and utility managers plan for the arrival of grid-connected vehicles, they need to understand where those vehicles are going to be located and what the impact could be.
To understand where these vehicles will likely be sold, Pike Research created a detailed geographic forecast model using a variety of inputs including population and demographic trends, affinity towards electric vehicles, and automakers' intended availability of vehicles. As a result of these, Pike Research forecasts that while California and New York will be the largest states for PEV sales, the largest cities do not necessarily correlate to the most sales. In fact, New York City and California cities dominate the top markets for PEVs, while other large population centers like Dallas, Philadelphia, Houston, Miami, Atlanta, and Washington DC fall short of the top markets for plug-in electric vehicles. Another key question many ask, is what happens when all these vehicles plug in? In the case of Southern California Edison's service territory, which is expected to be the largest market for PEV sales over the next seven years, the maximum potential is a 498 MW load on the grid by 2017.
This Pike Research report provides data and forecasts for the plug-in electric vehicle market at the state and metropolitan statistical area levels. This report also includes forecasts for plug-in electric vehicle sales within selected electric utility service territories. The data includes sales forecasts from 2011 to 2017 at each geographic level, and analysis of major trends in the forecasts.
Key questions addressed:
"make green a reality" visit http://www.thesolarandwindexpo.com/
To understand where these vehicles will likely be sold, Pike Research created a detailed geographic forecast model using a variety of inputs including population and demographic trends, affinity towards electric vehicles, and automakers' intended availability of vehicles. As a result of these, Pike Research forecasts that while California and New York will be the largest states for PEV sales, the largest cities do not necessarily correlate to the most sales. In fact, New York City and California cities dominate the top markets for PEVs, while other large population centers like Dallas, Philadelphia, Houston, Miami, Atlanta, and Washington DC fall short of the top markets for plug-in electric vehicles. Another key question many ask, is what happens when all these vehicles plug in? In the case of Southern California Edison's service territory, which is expected to be the largest market for PEV sales over the next seven years, the maximum potential is a 498 MW load on the grid by 2017.
This Pike Research report provides data and forecasts for the plug-in electric vehicle market at the state and metropolitan statistical area levels. This report also includes forecasts for plug-in electric vehicle sales within selected electric utility service territories. The data includes sales forecasts from 2011 to 2017 at each geographic level, and analysis of major trends in the forecasts.
Key questions addressed:
- Which states have the greatest affinity toward electric vehicle ownership?
- Which cities' demographic characteristics will make them large markets for electric vehicles?
- What is the size of the plug-in electric vehicle market over the next six years and how fast will the market grow?
- Where will plug-in electric vehicle sales grow the fastest?
- What will be the plug-in electric vehicle sales in your state?
- How large will the market share of plug-in electric vehicles be in each state?
- Which cities will see the largest number of plug-in electric vehicles in the next six years?
- How many vehicles will electric utilities have to prepare for?
- What is the potential grid impact of these vehicles to utilities?
- Auto manufacturers
- Vehicle aftermarket and service management
- Auto suppliers
- Electric vehicle charging equipment vendors
- Utilities
- Government agencies
- Industry associations
- Investor community
"make green a reality" visit http://www.thesolarandwindexpo.com/
Monday, February 14, 2011
Cool energy roof shingles coming to US?
ProGreen Properties, Inc. has announce that it has entered into a aggreement to possibly introduce SolTech's cool solar technology and products to the US housing market.
SolTech's solar energy technology is unique since representing new roof and/or wall cladding and a solar collector, whereby the south facing part of a roof and/or wall can become one huge thermal solar panel, placed under glass roof tiles and thus creating or maintaining an esthetically appealing look of the building. Because of the large size, massive amounts of energy can be generated, which substantially reduces the cost of energy for heating, as well as the cost of hot water. SolTech is now also, as an add on, developing a system that is able to produce electricity from the same thermal solar energy source when surplus energy is produced, as for example during the summer when heating is not needed. The efficiency of this dual use of the sun as an energy source in one system, is expected to be higher compared to other solar energy solutions, resulting in greater financial returns, as well as in improving the environment.
"We are very excited about this first step towards this new opportunity for ProGreen, as it could not only result in ProGreen implementing a new unique solar application to future real estate projects, but also open the door to possible creating an independent solar division of ProGreen, once the concept has been proven on our own properties," Says Jan Telander, CEO of ProGreen Properties, Inc.
ProGreen Properties, Inc. (ProGreen) (OTCBB-PGEI) is a young company (2009) based in Birmingham, Michigan. ProGreen is engaged in the business of acquiring, remodeling and upgrading residential real estate into more energy efficient, modern comfortable living spaces. These properties are then marketed as ProGreen Homes. ProGreen believes that Michigan offers some of the best investment opportunities in the presently distressed US property market.
For more information vist http://www.progreenproperties.com/ and http://www.soltechenergy.com/
"make green a reality" visit http://www.thesolarandwindexpo.com/
![]() |
| Soltech's cool thermal shingles |
SolTech's solar energy technology is unique since representing new roof and/or wall cladding and a solar collector, whereby the south facing part of a roof and/or wall can become one huge thermal solar panel, placed under glass roof tiles and thus creating or maintaining an esthetically appealing look of the building. Because of the large size, massive amounts of energy can be generated, which substantially reduces the cost of energy for heating, as well as the cost of hot water. SolTech is now also, as an add on, developing a system that is able to produce electricity from the same thermal solar energy source when surplus energy is produced, as for example during the summer when heating is not needed. The efficiency of this dual use of the sun as an energy source in one system, is expected to be higher compared to other solar energy solutions, resulting in greater financial returns, as well as in improving the environment.
"We are very excited about this first step towards this new opportunity for ProGreen, as it could not only result in ProGreen implementing a new unique solar application to future real estate projects, but also open the door to possible creating an independent solar division of ProGreen, once the concept has been proven on our own properties," Says Jan Telander, CEO of ProGreen Properties, Inc.
ProGreen Properties, Inc. (ProGreen) (OTCBB-PGEI) is a young company (2009) based in Birmingham, Michigan. ProGreen is engaged in the business of acquiring, remodeling and upgrading residential real estate into more energy efficient, modern comfortable living spaces. These properties are then marketed as ProGreen Homes. ProGreen believes that Michigan offers some of the best investment opportunities in the presently distressed US property market.
For more information vist http://www.progreenproperties.com/ and http://www.soltechenergy.com/
"make green a reality" visit http://www.thesolarandwindexpo.com/
Labels:
ProGreen Properties,
SolTech
The University of Maryland College Park Announces 631 KW Solar Project
More than 2,600 solar panels will be installed on a University of Maryland, College Park (UMD) building this summer, resulting in one of the largest rooftop solar power systems in Maryland.
“The use of solar energy – a clean energy source that produces no greenhouse gases – will move us another step closer to achieving our vision for a greener campus embodied in the university’s Strategic Plan.”
.UMD was selected as a Maryland Energy Administration Project Sunburst Initiative Partner and awarded a grant aimed at promoting the installation of renewable energy systems on public buildings in Maryland. As a result of a competitive bid process, Washington Gas Energy Services, Inc. (WGES) will finance the remainder of the project cost and UMD will purchase the electricity generated by the solar panels under a 20-year agreement with WGES.
By the second quarter of 2011, the solar power system will be installed and operating on the roof of UMD’s Severn building, a multi-purpose facility located less than a mile from the College Park campus. The 631 kilowatt system, which will be installed by Standard Solar Inc. of Rockville, Md. and owned and operated by WGES, will produce about 792 megawatt hours of electricity each year.
“The University is committed to addressing the significant challenges of this generation, including environmental sustainability, climate change, and renewable energy,” said Ann Wylie, Vice President of Administrative Affairs and Chair of the University Sustainability Council. “The use of solar energy – a clean energy source that produces no greenhouse gases – will move us another step closer to achieving our vision for a greener campus embodied in the university’s Strategic Plan.”
This solar project is the latest in a series of efforts the university has undertaken in an effort to achieve its goal to become “widely recognized as a national model for a Green University.” In 2007 UMD was one of 650 American colleges and universities that were signatories to the American College and University President’s Climate Commitment. This commitment provides a framework and support for the nation's colleges and universities to eventually become carbon neutral. As a signatory, the University of Maryland is reducing its greenhouse gas (GHG) emissions from campus operations and moving toward the goal of carbon neutrality.
Electricity from the solar panels will reduce UMD’s carbon footprint by over 600 tons per year, the equivalent of eliminating greenhouse gas emissions from 64,000 gallons of gasoline per year, or nearly 1.3 million gallons over the life of the contract.
“WGES has a long history of introducing renewable energy solutions for our customers,” said Harry Warren, president of WGES of Herndon, Va. “Our efforts to help customers find environmentally attractive solutions for their energy needs are bolstered by Maryland programs and policies that encourage, and in fact rely on, the competitive market to invest in these clean energy technologies. The University of Maryland project will bring our rapidly growing portfolio of owned and operated solar power projects on the east coast to about 4 megawatts.”
“We were thrilled to be able to bring much needed clean, renewable energy to the University of Maryland, College Park through this Project Sunburst grant,” said Malcolm Woolf, Director of the Maryland Energy Administration. “By investing in renewable energy resources UMD is helping Maryland achieve its Renewable Portfolio Standard goal of acquiring 20 percent of its energy from renewable sources by 2022.”
“As the region’s leading solar developer and installer, we look forward to our participation in this important project and contributing to UMD’s effort to become a model for what it means to be a Green University,” said Scott Wiater, president of Standard Solar.
"make green a reality" visit http://www.thesolarandwindexpo.com/
“The use of solar energy – a clean energy source that produces no greenhouse gases – will move us another step closer to achieving our vision for a greener campus embodied in the university’s Strategic Plan.”
.UMD was selected as a Maryland Energy Administration Project Sunburst Initiative Partner and awarded a grant aimed at promoting the installation of renewable energy systems on public buildings in Maryland. As a result of a competitive bid process, Washington Gas Energy Services, Inc. (WGES) will finance the remainder of the project cost and UMD will purchase the electricity generated by the solar panels under a 20-year agreement with WGES.
By the second quarter of 2011, the solar power system will be installed and operating on the roof of UMD’s Severn building, a multi-purpose facility located less than a mile from the College Park campus. The 631 kilowatt system, which will be installed by Standard Solar Inc. of Rockville, Md. and owned and operated by WGES, will produce about 792 megawatt hours of electricity each year.
“The University is committed to addressing the significant challenges of this generation, including environmental sustainability, climate change, and renewable energy,” said Ann Wylie, Vice President of Administrative Affairs and Chair of the University Sustainability Council. “The use of solar energy – a clean energy source that produces no greenhouse gases – will move us another step closer to achieving our vision for a greener campus embodied in the university’s Strategic Plan.”
This solar project is the latest in a series of efforts the university has undertaken in an effort to achieve its goal to become “widely recognized as a national model for a Green University.” In 2007 UMD was one of 650 American colleges and universities that were signatories to the American College and University President’s Climate Commitment. This commitment provides a framework and support for the nation's colleges and universities to eventually become carbon neutral. As a signatory, the University of Maryland is reducing its greenhouse gas (GHG) emissions from campus operations and moving toward the goal of carbon neutrality.
Electricity from the solar panels will reduce UMD’s carbon footprint by over 600 tons per year, the equivalent of eliminating greenhouse gas emissions from 64,000 gallons of gasoline per year, or nearly 1.3 million gallons over the life of the contract.
“WGES has a long history of introducing renewable energy solutions for our customers,” said Harry Warren, president of WGES of Herndon, Va. “Our efforts to help customers find environmentally attractive solutions for their energy needs are bolstered by Maryland programs and policies that encourage, and in fact rely on, the competitive market to invest in these clean energy technologies. The University of Maryland project will bring our rapidly growing portfolio of owned and operated solar power projects on the east coast to about 4 megawatts.”
“We were thrilled to be able to bring much needed clean, renewable energy to the University of Maryland, College Park through this Project Sunburst grant,” said Malcolm Woolf, Director of the Maryland Energy Administration. “By investing in renewable energy resources UMD is helping Maryland achieve its Renewable Portfolio Standard goal of acquiring 20 percent of its energy from renewable sources by 2022.”
“As the region’s leading solar developer and installer, we look forward to our participation in this important project and contributing to UMD’s effort to become a model for what it means to be a Green University,” said Scott Wiater, president of Standard Solar.
"make green a reality" visit http://www.thesolarandwindexpo.com/
Labels:
Solar Energy,
Standard Solar,
University of Maryland,
WGES
Wednesday, February 9, 2011
Rep. Slaughter Encourages Natcore Technology to Locate Facility in Kodak's Business Park
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| Congresswoman Louise Slaughter |
Slaughter has been working with Natcore Technology Inc. whose technology would enable the manufacture of flexible solar cells that could reduce the cost of making solar panels and the time required to install solar arrays by more than 60%. Based in Red Bank, NJ, Natcore does not have a presence in upstate New York. But seeing that Eastman Business Park would be a perfect fit to meet Natcore's research, development, and manufacturing needs, Slaughter has joined Kodak in trying to establish a future production facility and Natcore's research lab in Rochester.
![]() |
| Eastman Business Park |
On the heels of President Obama's call in his State of the Union Address to grow U.S. innovation, Slaughter also personally called on the Obama Administration and the U.S. Energy Department to work with Natcore so that it can establish a Rochester manufacturing center. In previous expansion initiatives, Natcore has formed a joint venture with companies in China but Slaughter is encouraging them to manufacture their flexible solar cells in the U.S. so that the technology created in America is manufactured in America.
![]() |
| Natcore President and CEO Chuck Provini |
Kodak is a leader in chemical, thin film, and coating capabilities, all core competencies needed for the production of photovoltaic solar cells.
"No one knows more about manufacturing film products than Kodak," said Mike Alt, Director of Eastman Business Park. "Kodak has developed thin film technology that is directly applicable to the next generation of photovoltaic panels. At Eastman Business Park, we have the technical resources, development and pilot tools, and the manufacturing capacity to accelerate the commercialization of new technologies, such as Natcore's roll-to-roll solar cell process."
Natcore may also establish an R&D lab at Eastman Business Park where it would accelerate its development of tandem solar cells using Natcore's proprietary liquid phase technology. These super-efficient cells could yield twice the power output of today's most efficient solar cells.
Due to Slaughter's intervention, Department of Energy officials are meeting with Natcore to assess possible programs to help fund the development of a manufacturing operation at Eastman Business Park.
"make green a reality" visit http://www.thesolarandwindexpo.com/
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