Showing posts with label biotechnology. Show all posts
Showing posts with label biotechnology. Show all posts

New Nanohybrid Catalysts Could Streamline Biofuel Production

>> Monday, January 4, 2010


Crossley
Schematic illustration of the reactions taking place at the water/oil interface in the solid-stabilized emulsions. Depending on the reaction temperature, the prevailing reactions are hydrogenation, hydrogenolysis, or decarbonylation, and depending on the relative solubilities, the products remain in the aqueous phase or migrate to the oil phase. Source: Crossley et al., Science. Click to enlarge.

Researchers at the University of Oklahoma have developed a new family of solid catalysts that can stabilize water-oil emulsions and catalyze reactions at the liquid/liquid interface. Such a recoverable catalyst that simultaneously stabilizes emulsions would be “highly advantageous” in streamlining processes such as biomass refining, in which the immiscibility and thermal instability of crude products greatly complicates purification procedures, note Crossleyet al. in their paper, published 1 January in Science.



The authors deposited palladium onto carbon nanotube–inorganic oxide hybrid nanoparticles. The oxides are hydrophilic, and attracted to the water; the carbon nanotubes are hydrophobic, and prefer the organic layer.



The resulting Janus catalysts (as described by Dr. David Cole-Hamilton of University of St. Andrews, Scotland in an accompanying Perspective piece inScience), sit at the surface like a large surfactant molecule. But unlike surfactants, the nanoparticles are solids that can be easily separated out.


Rather than carrying out multiple consecutive purification steps during refining to separate out the hydrophilic by-products incompatible with fuel applications, it would be desirable to perform sequential reactions under phase-transfer conditions in a single reactor medium.


A serious drawback in such systems, however, is that the surfactants can be difficult to separate from final product mixtures. Solid particles are more easily recoverable and have also been shown in many cases to stabilize aqueous-organic emulsions, but these solid-stabilized emulsions have not been widely used in catalytic contexts. Moreover, in cases such as the refining of bio-oils in which the system is biphasic and contains up to 30% water, the most efficient way of catalyzing reactions is to place the solid catalyst at the liquid/liquid interface and to maximize the extent of interface by creating an emulsion. Otherwise, the catalyst particles will preferentially remain in the heavier phase, such as water. In that case, only the water-soluble molecules will be converted. If further conversion of water-insoluble molecules is wanted, one would need to remove them from the top of the reactor and send them to another reactor with a catalyst operating in the organic phase. Therefore, the concept of solid particles that can simultaneously stabilize an emulsion and catalyze reactions in both phases becomes an attractive proposition.

—Crossley et al.



In the study, the authors explored two preparations with nanotubes of different type, which affected the deposition of Pd. They presented results obtained for several reactions of relevance to biomass-refining chemistry: the elimination of oxygen and the condensation of small molecules. The former is needed to improve the low stability caused by the high reactivity of the oxygenated functional groups in molecules such as the phenolic compounds derived from lignin. The latter is particularly important to increase the molecular weight of those light fragments derived from the less refractory parts of the biomass (cellulose and hemicellulose).


The advantage of operating in a biphasic system, with the catalyst at the liquid/liquid interface, is the possibility of conducting the sequential reactions in a single reactor instead of two.


With solid-stabilized emulsions, a continuous process could be designed in which the two homogeneous phases coexist with the emulsion in a layered configuration: oil/emulsion/water. One can achieve full conversion on both sides of the emulsion followed by constant removal of oil-soluble products from the top layer and water-soluble products from the bottom layer while the reaction keeps occurring in the emulsion.


Our results highlight the preliminary applications of solid catalysts localized at the interface between two liquid phases. We anticipate that tailoring such emulsion-stabilizing solids with additional catalytic functional groups will facilitate a broad range of reactions.

—Crossley et al.



Resources

  • Steven Crossley, Jimmy Faria, Min Shen, Daniel E. Resasco (2010) Solid Nanoparticles that Catalyze Biofuel Upgrade Reactions at the Water/Oil Interface. Science Vol. 327. no. 5961, pp. 68 - 72 doi:10.1126/science.1180769


  • David J. Cole-Hamilton (2010) Janus Catalysts Direct Nanoparticle Reactivity. Science Vol. 327. no. 5961, pp. 41 - 42 doi:10.1126/science.1184556

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Biofuel researcher wins biotechnology award

Y.H. Percival Zhang

Y.H. Percival Zhang

BLACKSBURG, Va., January 4, 2010 -- Y.H. Percival Zhang, assistant professor of biological systems engineering at Virginia Tech, has been selected to receive the 2010 Daniel I.C. Wang Award.

Presented by John Wiley & Sons Inc. and the journal,Biotechnology and Bioengineering, the award honors an accomplished young member of the biotechnology/bioengineering academic community for commitment to the journal and the community it serves.

The award is named in honor of Massachusetts Institute of Technology Professor Daniel IC Wang, considered "the father of modern biotechnology." It will be presented at the 2010 American Chemical Society annual meeting, to be held in San Francisco, March 21-25.

Zhang's biofuels lab at Virginia Tech integrates chemical engineering design principles with protein biochemistry, microbiology, and modern biotechnology to solve the most crucial challenges for production of biofuels as transportation fuels. He has developed a room-temperature process for digesting biomass into several useful products, including sugars that can be converted to fuels. And he and colleagues at Oak Ridge National Laboratory have demonstrated experimentally an onboard process to convert a cellulosic material into hydrogen to power fuel cell vehicles. Funded by the Air Force, he is engineering enzymes to expedite the conversion of the cellulosic substrate into the soluble product that is ultimately converted to hydrogen energy.

In addition to his most recent award and the Sunkist Young Designer Award, Zhang has received the Air Force Young Investigator Award, the DuPont Young Professor Award, the British Petroleum Young Scientists Award, the Ralph E. Powe Junior Faculty Enhancement Award from Oak Ridge Associated University. Zhang has received more than $2 million in external funding over the past four years in support of his research program, has published 47 peer-reviewed publications, four invited feature articles, and 10 book chapters, and has submitted 15 patent disclosures. He serves on the editorial boards of three journals.

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Enzyme cocktail converts cellulosic materials, water into hydrogen fuel

>> Monday, February 16, 2009

BLACKSBURG, Va., February 16, 2009 -- Tomorrow's fuel-cell vehicles may be powered by enzymes that consume cellulose from woodchips or grass and exhale hydrogen.

Researchers at Virginia Tech, Oak Ridge National Laboratory (ORNL), and the University of Georgia have produced hydrogen gas pure enough to power a fuel cell by mixing 14 enzymes, one coenzyme, cellulosic materials from nonfood sources, and water heated to about 90 degrees (32 C).

The group announced three advances from their "one pot" process: 1) a novel combination of enzymes, 2) an increased hydrogen generation rate -- to as fast as natural hydrogen fermentation, and 3) a chemical energy output greater than the chemical energy stored in sugars – the highest hydrogen yield reported from cellulosic materials.

"In addition to converting the chemical energy from the sugar, the process also converts the low-temperature thermal energy into high-quality hydrogen energy – like Prometheus stealing fire," said Percival Zhang, assistant professor of biological systems engineering in the College of Agriculture and Life Sciences at Virginia Tech.

"It is exciting because using cellulose instead of starch expands the renewable resource for producing hydrogen to include biomass," said Jonathan Mielenz, leader of the Bioconversion Science and Technology Group at ORNL.

The researchers used cellulosic materials isolated from wood chips, but crop waste or switchgrass could also be used. "If a small fraction – 2 or 3 percent – of yearly biomass production were used for sugar-to-hydrogen fuel cells for transportation, we could reach transportation fuel independence," Zhang said. (He added that the 3 percent figure is for global transportation needs. The United States would actually need to convert about 10 percent of biomass – which would be 1.3 billion tons of usable biomass).

The most recent research is published in the Wiley journal ChemSusChem (Chemistry and Sustainability), in the article "Spontaneous High-Yield Production of Hydrogen from Cellulosic Materials and Water Catalyzed by Enzyme Cocktails," by Virginia Tech student Xinhao Ye and post doctoral associate Yiran Wang, both in biological systems engineering; Robert C. Hopkins and Michael W. W. Adams of the Department of Biochemistry and Molecular Biology at the University of Georgia; Barbara R. Evans and Mielenz of the ORNL Chemical Sciences and Biosciences Divisions, respectively; and Zhang.

The research is supported by the Air Force Office of Scientific Research; Zhang's DuPont Young Professor Award, and the U.S. Department of Energy.

IMAGE INFORMATION: Percival Zhang (left) discusses conversion of biomass to energy with Geoff Moxley, who recently received his master of science degree in biological systems engineering from Virginia Tech.

Contact Susan Trulove at strulove@vt.edu or (540) 231-5646.

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