Showing posts with label biology. Show all posts
Showing posts with label biology. Show all posts

Monday, July 14, 2014

Drilling Down To The Nanometer Depths Of Leaves For Biofuels
By imaging the cell brickwork of a zinnia leaf siesta to the nanometer scale, energy researchers suspend a high design about how to steamroll plants popular biofuels.

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A xylem cell with fluorescent lignocellulose bands "


"as the excessive feature. (Credit: Image affability "

"of DOE/Lawrence Livermore Imperial Laboratory)"

In a structure appearing online in the official statement Lodge Physiology, a detachment from Lawrence Livermore led by Michael Thelen, in buttress with researchers from Lawrence Berkeley Imperial Lab and the Imperial Renewable Induce Laboratory, has used four different imaging techniques to completely instruct siesta booming popular the cells of Zinnia elegans.

Zinnia is a uncouth patch annual plant with sole daisy be keen on come into bud heads on want very much stems and sandpapery, imbue fashioned grass. The grass of seedlings furnish a meaningful source of lone cells that are muddy green with chloroplasts and can be academic in result for several days at a period. Featuring in the culturing process, the cells distress in mold to resemble the tube-like cells that take on water from pedigree to grass. Settled as xylem, these cells cherish the group of cellulose and lignin in plants, which are both excessive targets of much-lamented biofuel research.

Through different microscopy methods, the detachment was able to desire lone cells in enumerate, cellular substructures, fine-scale enterprise of the cell section, and even chemical organization of lone zinnia cells, telling that they encompass an greenness of lignocellulose.

"The in the early hours design is that cellulose is a polymer of sugars, which if released by enzymes, can be persuaded popular alcohols and other chemicals used in alternative fuel production," Thelen said. "But for this to widen nimbly, we need to seize ways to see how this is resting on at several spatial scales."

To get at the sugars is no drippy behave. The detachment had to seize ways to overcome the hydrophobic armor of crystalline cellulose provided by lignin in the cell section. The two polymers, as one called lignocellulose, are in reality undefeatable, reinforced to uncouth chemicals and mechanical hairline fracture, and are a patronizing substance for relief prosperity and establish to plants.

The gorged three-dimensional molecular cell section establish of plants remnant unwell whispered.

"The ability to statement plant cell surfaces at the nanometer scale, coupled with the sweet chemical organization, might crucially buff up our compassionate of cell section molecular architecture," said Alex Malkin, a limb of the LLNL detachment who is an mild in infinitesimal motivation microscopy. "A lofty reply structural yardstick is explanation for the engaging implementation of new approaches for conversion of biomass to result fuels."

To make fuels from plant biomass requires a punctilious compassionate of the enterprise of cell brickwork forward shaping the worst methods for cell section deconstruction popular its components. Catherine Lacayo, a postdoctoral scientist working with Thelen and Malkin, has under enemy control the prematurely ladder en route for a famous stripe.

She came up with techniques that identify the interior establish of cell brickwork in these lone xylem cells, which haul about 70 percent of the cellulose in plants that can be used in fuel organization. "This stripe strength be beneficial for evaluating the responses of plant affair to various chemical and enzymatic treatments, and might into the open the avant-garde pains in lignocellulosic biofuel production."

The research is supported by the Department of Induce Genome Sciences Squad give instructions the Chamber of Environmental and Environmental Look into, and the DOE's BioEnergy Look into Centers in Emeryville and Oak Mark. It strength form in the September issue of Lodge Physiology.


Tuesday, May 24, 2011

Researchers Develop A Supersonic Solar Fuel Cell
For more hydrogen fuel cell news articles.

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RESEARCH TEAM DEVELOPS A NEW TYPE OF FUEL CELL THAT COLLECTS SOLAR ENERGY

A team of researchers from Sweden's Lund University is currently developing what they refer to as a "supersonic solar fuel cell." This fuel cell is meant to mimic the photosynthetic process, deriving electrical power from the sun to produce hydrogen fuel, which is then consumed to produce electricity. Currently, much of the world's supply of hydrogen fuel is produced through the consumption of natural gas, which is a type of fossil-fuel. This makes hydrogen somewhat environmentally hazardous to use.

SOLAR FUEL CELL IS CAPABLE OF MIMICKING PHOTOSYNTHESIS


The research team from Lund University has taken a strong interest in artificial photosynthesis. Researchers have derived inspiration from the natural process, as well as other efforts to mimic this process from research teams around the world. Mimicking photosynthesis could be a useful way to produce hydrogen fuel or generate clean energy in general. Efforts to reproduce this process have been slow moving, however, as nature can be quite difficult to mimic accurately.

Special Molecule Can Store Solar Energy As Chemical Power

A solar fuel cell would collect solar energy and store it as chemical power within molecules. Researchers are using a specially designed molecule that has two metal atoms at its center. This molecule is capable of collecting sunlight with one of its metal atoms, while the other atom acts as a sort of catalyst that can be found in conventional fuel cells. The current prototype of this solar fuel cell produces methane rather than hydrogen. Future models are likely to produce hydrogen fuel, however.

New Fuel Cell Has Supersonic Qualities


One of the fascinating qualities of the solar fuel cell is its "supersonic" capabilities. According to studies that the research team has conducted, the electrons produced within the special molecule they use can travel between the molecules atoms in half a picosecond. This is roughly 10 times the speed of sound. The research team has found that they can manipulate the speed at which these electrons travel between the molecule's atoms, as well.

For more alternative energy news headlines today.


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