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Showing posts with label hydrogen. Show all posts
Showing posts with label hydrogen. Show all posts

Tuesday, March 20, 2012

New Catalyst for Safe, Reversible Hydrogen Storage

New Catalyst for Safe, Reversible Hydrogen Storage

Room-temperature reaction takes place in water; can switch from hydrogen storage to release by changing pH

March 18, 2012
Etsuko Fujita, Jonathan Hull, and James Muckerman
Click on the image to download a high-resolution version.Etsuko Fujita, Jonathan Hull, and James Muckerman
UPTON, NY — Scientists at the U.S. Department of Energy’s (DOE) Brookhaven National Laboratory and collaborators have developed a new catalyst that reversibly converts hydrogen gas and carbon dioxide to a liquid under very mild conditions. The work — described in a paper published online March 18, 2012, in Nature Chemistry — could lead to efficient ways to safely store and transport hydrogen for use as an alternative fuel.
Hydrogen is seen as an attractive fuel because it can efficiently be converted to energy without producing toxic products or greenhouse gases. However, the storage and transportation of hydrogen remain more problematic than for liquid hydrocarbon fuels. The new work builds on earlier efforts to combine hydrogen with carbon dioxide to produce a liquid formic acid solution that can be transported using the same kind of infrastructure used to transport gasoline and oil.
“This is not the first catalyst capable of carrying out this reaction, but it is the first to work at room temperature, in an aqueous (water) solution, under atmospheric pressure — and that is capable of running the reaction in forward or reverse directions depending on the acidity of the solution,” said Brookhaven chemist Etsuko Fujita, who oversaw Brookhaven’s contributions to this research.
“When the release of hydrogen is desired for use in fuel cells or other applications, one can simply flip the ‘pH switch’ on the catalyst to run the reaction in reverse,” said Brookhaven chemist James Muckerman, a co-author on the study. He noted that the liquid formic acid might also be used directly in a formic-acid fuel cell.
Collaborator Yuichiro Himeda of the National Institute of Advanced Industrial Science and Technology (AIST) of Japan had been making substantial progress toward the goal of developing this type of catalyst for a number of years. He used iridium metal complexes containing aromatic diimine ligands (groups of atoms bound to the metal) with pendent, peripheral hydroxyl (OH) groups that can serve as acidic sites that release protons to become pendent bases.
Himeda recently entered into collaboration — via the U.S.-Japan Collaboration on Clean Energy Technology program — with Fujita, Muckerman, and Jonathan Hull (a Goldhaber Fellow working on Fujita’s team). The Brookhaven group carried out coordinated experimental and theoretical studies to understand the sequence of chemical steps by which these catalysts converted H2and CO2 into formic acid. Their goal was to design new catalysts with improved performance.
The Brookhaven team’s key idea came from Nature: “We were inspired by the way hydrogen bonds and bases relay protons in the active sites of some enzymes,” Hull said.
new catalyst
Click on the image to download a high-resolution version.This diagram shows the new catalyst in its protonated and deprotonated states as it reversibly converts hydrogen and CO2 gas to and from liquid formate or formic acid at ambient temperature and pressure. The gases can thereby be stored and transported as a liquid, and used later in carbon-neutral energy applications, simply by adjusting the pH.
“Good catalysts efficiently move protons and electrons around, taking them from some molecules and placing them onto others to produce the desired product,” he explained. “Nature has many ways of doing this. Under the right conditions, the hydroxyl groups on the diimine ligand of the catalyst help hydrogen react with carbon dioxide, which is difficult to do. We thought we could improve the reactivity by placing the pendent bases near the metal centers, rather than in peripheral positions.”
Once the Brookhaven team understood how Himeda’s catalysts worked, Hull realized that a novel ligand that had been synthesized by collaborators Brian Hashiguchi and Roy Periana of The Scripps Research Institute for an entirely different purpose would possibly be ideal for accomplishing this goal. The Brookhaven group designed a new iridium metal catalyst incorporating this new ligand.
Collaborator David Szalda of Baruch College (City University of New York) determined the atomic level crystal structure of the new catalyst to “see” how the arrangement of its atoms might explain its function.
Tests of the new catalyst revealed superior catalytic performance for storing and releasing H2 under very mild reaction conditions. For the reaction combining CO2 with H2, the scientists observed high turnovers at room temperature and ambient pressure; for the catalytic decomposition of formic acid to release hydrogen, the catalytic rate was faster than any previous report.
“We were able to convert a 1:1 mixture of H2 and CO2 to formate (the deprotonated form of formic acid) at room temperature, successfully regenerate H2, and then repeat the cycle. It’s a design principle we are very fortunate to have found,” said Hull.
The regenerated high-pressure gas mixture (hydrogen and carbon dioxide) is quite pure; importantly, no carbon monoxide (CO) — an impurity that can ‘poison’ fuel cells and thus reduce their lifetime — was detected. Therefore, this method of storing and regenerating hydrogen might have a use in hydrogen fuel cells.
Further efforts to optimize the hydrogen storage process are ongoing using several catalysts with the same design principle.
“This is a wonderful example of how fundamental research can lead to the understanding and control of factors that contribute to the solution of technologically important problems,” Muckerman concluded.
This research was funded by the DOE Office of Science, a Goldhaber Distinguished Fellowship, and by the Japanese Ministry of Economy, Trade, and Industry.
DOE’s Office of Science is the single largest supporter of basic research in the physical sciences in the United States, and is working to address some of the most pressing challenges of our time. For more information, please visit science.energy.gov.
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Saturday, February 18, 2012

Leaders of the Fuel Cell Pack

Strictly speaking, fuel cells may not be renewable energy, but they are still of interest.


Leaders of the Fuel Cell Pack

February 17, 2012 - 10:32am


Fuel cell forklifts like the one shown here are used by leading companies across the U.S. as part of their daily business operations. | Energy Department file photo. Fuel cell forklifts like the one shown here are used by leading companies across the U.S. as part of their daily business operations. | Energy Department file photo.
What do WalMart, Coca-Cola, Sysco, and Whole Foods have in common?

They’re leading the pack when it comes to hydrogen and fuel cells.

The Energy Department’s "Business Case for Fuel Cells 2011" report illustrates how top American companies are using fuel cells in their business operations to advance their sustainability goals, save millions of dollars in electricity costs, and reduce carbon emissions by hundreds of thousands of metric tons per year.

The report profiles 34 companies and highlights how they incorporate fuel cell technologies into their business models. According to the report, in the last year, profiled companies used more than 250 fuel cells totaling 30+ MW of stationary power -- enough to supply electricity for over 21,000 households. In addition, companies in the report purchased or deployed more than 240 fuel cells at telecommunication sites and more than 1,030 fuel cell-powered lift trucks.

Walmart, Coca-Cola, Sysco, and Whole Foods are leading the pack:

·      Walmart -- 6.8 MW for CHP (17 stores) and 70+ forklifts
·      Coca-Cola -- 2.1 MW (4 locations) and 70+ forklifts
·      Sysco Corporation -- 600+ forklifts at several locations, one hundred more on order
·      Whole Foods Market -- 1.2 MW (4 stores) and 60+ forklifts

So how do these companies deploy fuel cell technologies in their daily operations? Many use fuel cells as a cost-saving alternative to power lift trucks in their warehouses and distribution centers. The Department’s analysis of fuel cell-powered lift trucks deployed via the Recovery Act concludes that fuel cells provide eight times lower refueling/recharging labor cost and two times lower net present value of total system cost compared to batteries.

In addition, Combined Heat and Power systems are another attractive application of fuel cell technologies. When fuel cells generate electricity they give off waste heat. In a combined heat and power system, the waste heat is captured for a wide variety of applications, including space heating and hot water.  

You can read more about how fuel cells are beneficially impacting these companies’ bottom line while further promoting the use of clean energy technologies by checking out the report.

Wednesday, February 15, 2012

Return to the Archives

There isn't much Renewable Energy or Energy Efficiency news today, so I thought I would go back to the Archives to find something of interest.  Below is a DOE article from September 2007 with some interesting links.

Hope you enjoy.


Renewable Energy, Bioproduct Inventions Win Seven R&D 100 Awards

September 26, 2007

Researchers at DOE national laboratories and facilities contributed to 31 out of the 100 technology advancements that are being honored this year with R&D 100 Awards. As a top harbinger of innovative research and development, R&D Magazine has been recognizing the top 100 inventions of the year for the past 45 years. This year's awards include 18 that are related to energy efficiency and renewable energy, of which 7 are related to renewable energy. (The energy efficiency winners are covered in a separate article.) See the awards announcements on Beam/X-Ray Devices (PDF 99 KBPDF), Energy (PDF 150 KBPDF), Materials & Metals (PDF 243 KBPDF), and Thermal technologies (PDF 105 KBPDF) in R&D Magazine. Download Adobe Reader.

Among renewable energy technologies, DOE's National Renewable Energy Laboratory (NREL) and Spectrolab, a Boeing subsidiary, earned an award for building the first solar cell to surpass 40% conversion efficiency. That is, the solar cell is able to convert more than 40% of the sunlight hitting it into electricity. Other solar cell technologies include an improved transparent conductor made out of carbon nanotubes. Transparent conductors often form the top layer of thin-film solar cells and related devices, such as flat panel displays. A German company also won for inventing a small high-vacuum pump used in solar cell manufacturing that consumes one-third less power than earlier pumps. See the NREL press release.

Thanks in part to support from DOE's Inventions & Innovations program, Phenotype Screening Corporation won an award for a non-invasive system to image and characterize plant roots, a technology that could be important for biomass crop development. In addition, DOE's Lawrence Berkeley National Laboratory (LBNL) helped to develop a gas turbine that can run on biogas, hydrogen, and other fuels; UTC Power worked with a hot springs resort in Alaska to develop a device that generates power from low-temperature geothermal resources; and Battelle Memorial Institute invented a biobased polyol, a chemical that could replace up to 3 billion pounds of petroleum-based polyols that are used each year in the United States to produce foams, coatings, and adhesives. Other biobased polyols have been developed recently, but the Battelle invention is reactive enough to form polyurethane foams. The chemical is also generated from glycerine, a byproduct of the biodiesel industry. See the press releases from LBNL, UTC Power, and Battelle.

Thursday, February 9, 2012

Hydrogen from Acidic Water

NEWS RELEASE
February 9, 2012
For Immediate Release
Contact:
Lynn Yarris
lcyarris@lbl.gov / (510)-486-5375
Click  here to view this release online with images. 
Hydrogen from Acidic Water: 
   
Berkeley Lab Researchers Develop a Potential Low Cost Alternative to Platinum for Splitting Water
A technique for creating a new molecule that structurally and chemically replicates the active part of the widely used industrial catalyst molybdenite has been developed by researchers with the U.S. Department of Energy's Lawrence Berkeley National Laboratory (Berkeley Lab). This technique holds promise for the creation of catalytic materials that can serve as effective low-cost alternatives to platinum for generating hydrogen gas from water that is acidic.

Christopher Chang and Jeffrey Long, chemists who hold joint appointments with Berkeley Lab and the University of California (UC) Berkeley, led a research team that synthesized a molecule to mimic the triangle-shaped molybdenum disulfide units along the edges of molybdenite crystals, which is where almost all of the catalytic activity takes place. Since the bulk of molybdenite crystalline material is relatively inert from a catalytic standpoint, molecular analogs of the catalytically active edge sites could be used to make new materials that are much more efficient and cost-effective catalysts.

"Using molecular chemistry, we've been able to capture the functional essence of molybdenite and synthesize the smallest possible unit of its proposed catalytic active site," says Chang, who is also an investigator with the Howard Hughes Medical Institute (HHMI). "It should now be possible to design new catalysts that have a high density of active sites so we get the same catalytic activity with much less material."

Says Long, "Inorganic solids, such as molybdenite, are an important class of catalysts that often derive their activity from sparse active edge sites, which are structurally distinct from the inactive bulk of the molecular solid. We've demonstrated that it is possible to create catalytically active molecular analogs of these sites that are tailored for a specific purpose. This represents a conceptual path forward to improving future catalytic materials."

Chang and Long are the corresponding authors of a paper in the journal Science describing this research titled "A Molecular MoS2 Edge Site Mimic for Catalytic Hydrogen Generation." Other authors are Hemamala Karunadasa, Elizabeth Montalvo, Yujie Sun and Marcin Majda.

Molybdenite is the crystalline sulfide of molybdenum and the principal mineral from which molybdenum metal is extracted. Although commonly thought of as a lubricant, molybdenite is the standard catalyst used to remove sulfur from petroleum and natural gas for the reduction of sulfur dioxide emissions when those fuels are burned. Recent studies have shown that in its nanoparticle form, molybdenite also holds promise for catalyzing the electrochemical and photochemical generation of hydrogen from water. Hydrogen could play a key role in future renewable energy technologies if a relatively cheap, efficient and carbon-neutral means of producing it can be developed.

Currently, the best available technique for producing hydrogen is to split water molecules into molecules of hydrogen and oxygen using platinum as the catalyst. However, with platinum going for more than $2,000 an ounce, the market is wide open for a low cost alternative catalyst. Molybdenite is far more plentiful and about 1/70th the cost of platinum, but poses other problems.

"Molybdenite has a layered structure with multiple microdomains, most of which are chemically inert," Chang says. "High-resolution scanning tunneling microscopy studies and theoretical calculations have identified the triangular molybdenum disulfide edges as the active sites for catalysis; however, preparing molybdenite with a high density of functional edge sites in a predictable manner is extremely challenging."

Chang, Long and their research team met this challenge using a pentapyridyl ligand known as PY5Me2 to create a molybdenum disulfide molecule that, while not found in nature, is stable and structurally identical to the proposed triangular edge sites of molybdenite. It was shown that these synthesized molecules can form a layer of material that is analogous to constructing a sulfide edge of molybdenite.

"The electronic structure of our molecular analog can be adjusted through ligand modifications," Long says. "This suggests we should be able to tailor the material's activity, stability and required over-potential for proton reduction to improve its performance."

In 2010, Chang and Long and Hemamala Karunadasa, who is the lead author on this new Science paper, used the PY5Me2 ligand to create a molybdenum-oxo complex that can effectively and efficiently catalyze the generation of hydrogen from neutral buffered water or even sea water. Molybdenite complexes synthesized from this new molecular analog can just as effectively and efficiently catalyze hydrogen gas from acidic water.

"We're now looking to develop molecular analogs of active sites in other catalytic materials that will work over a range of pH conditions, as well as extend this work to photocatalytic systems" Chang says.

Adds Long, "Our molecular analog for the molybdenite active site might not be a replacement for any existing catalytic materials but it does provide a way to increase the density of active sites in inorganic solid catalytic materials and thereby allow us to do more with less."

This research was supported by the DOE Office of Science, in part through the Joint Center for Artificial Photosynthesis, a DOE Energy Innovation Hub.


 

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