Showing posts with label Material. Show all posts
Showing posts with label Material. Show all posts
Wednesday, April 03, 2013

Opportunities - Post Doc - NASA

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Title:
NASA Postdoctoral Fellowships

Where:
National Aeronautics and Space Administration (NASA), United States

Field: 
Earth Science; Space Science; Astronomy; Materials Science; Computer Science; Atmospheric Science; Aeronautics; Engineering; Physics; Astrobiology; Astrophysics; Chemistry; Optics; Nanotechnology; Geology

Eligibility:
  1. U. S. citizens, Lawful Permanent Residents, and foreign nationals eligible for J-1 status as a Research Scholar
  2. Recent and senior-level Ph.D. recipients
Fellowship Positions:
  • Ames Research Center, Moffett Field, CA
  • Dryden Flight Research Center, Edwards, CA
  • Glenn Research Center, Cleveland, OH
  • Goddard Space Flight Center, Greenbelt, MD
  • Goddard Institute for Space Studies, New York, NY
  • Jet Propulsion Laboratory, Pasadena, CA
  • Johnson Space Center, Houston, TX
  • Kennedy Space Center, Kennedy Space Center, FL
  • Langley Research Center, Hampton, VA
  • Marshall Space Flight Center, Huntsville, AL
  • Stennis Space Center, Stennis Space Center, MS
  • NASA Headquarters, Washington, DC
  • Various locations associated with the NASA Astrobiology Institute and the NASA Lunar Science Institute
Contact:
To obtain more information and to apply for this exciting opportunity, please visit the Website at http://nasa.orau.org/postdoc.

Questions may be directed to nasapostdoc@orau.org.


Deadline: March 1, July 1, and November 1 2013 
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Saturday, March 23, 2013

Opportunities - PhD - Material Science

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Title:
PhD in Material Science
(index no. 4603-00) Advertisement no. 22844

Where:
Paul Scherrer Institute , Switzerland

Field: 
Material Science

Eligibility:
Applicants must fulfill the following conditions.
  • You hold a Master degree in material science or metallurgy and have a solid background in corrosion/electrochemistry and metallurgy and know the basic metallographical characterization techniques. 
  • You are fluent in English and have good skills in writing and communication. 
  • Basic knowledge in German is an asset.
Contact:
For further information please contact Stefan Ritter, phone +41 56 310 29 83.

Please submit your application online (including addresses of referees) for the position as a PhD Student (index no. 4603-01).

Paul Scherrer Institute, Human Resources Management, Sabine Mier, 5232 Villigen PSI, Switzerland.

Apply Now
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Monday, March 11, 2013

Biobatteries catch breath

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Biobatteries catch breath

An air-breathing bio-battery has been constructed by researchers from the Institute of Physical Chemistry of the Polish Academy of Sciences in Warsaw. The core element providing the new power source with relatively high voltage and long lifetime is a carefully designed cathode taking up oxygen from air and composed of an enzyme, carbon nanotubes and silicate.
Biobatteries
People are increasingly taking advantage of devices supporting various functions of our bodies. Today they include cardiac pacemakers or hearing aids; tomorrow it will be contact lenses with automatically changing focal length or computer-controlled displays generating images directly in the eye. None of these devices will work if not coupled to an efficient and long-lasting power supply source. The best solution seems to be miniaturised biofuel cells consuming substances naturally occurring in human body or in its direct surrounding.

Researchers from the Institute of Physical Chemistry of the Polish Academy of Sciences (IPC PAS) in Warsaw developed an efficient electrode for the use in construction of biofuel cells or zinc-oxygen biobatteries. After installation in a cell, the new biocathode generates a voltage, during many hours, that is higher than that obtained in existing power sources of similar design. The most interesting is that the device is air-breathing: it works at full efficiency when it can take oxygen directly from the air.

Common batteries and rechargeable batteries are unsuitable to power implants inside the human body as they use strong bases or acids. These agents can on no account get into the body. The battery housing must be therefore absolutely tight. But in line with reducing the battery size, it must be better isolated. In extreme cases, the weight of the housing of a common, miniaturised battery would be even a few dozen times greater than the weight of the battery's active components that generate electricity. And here biofuel cells offer an essential advantage: they do not require housing. To get electricity, it is enough to insert the electrodes into the body.

"One of the most popular experiments in electrochemistry is to make a battery by sticking appropriately selected electrodes into a potato. We are doing something similar, the difference is that we are focusing on biofuel cells and the improvement of the cathode. And, of course, to have the whole project working, we'd rather replace the potato with... a human being", says Dr Martin Jönsson-Niedziółka (IPC PAS).

In the experiments, Dr Jönsson-Niedziółka's group uses zinc-oxygen batteries. The principle of their operation is not new. The batteries constructed in this way had been popular before the time of alkaline power sources came. "At present, many laboratories work on glucose-oxygen biofuel cells. In the best case they generate a voltage of 0.6-0.7 V. A zinc-oxygen biobattery with our cathode is able to generate 1.75 V for many hours.", says Adrianna Złoczewska, a PhD student at the IPC PAS, whose research has been supported under the International PhD Projects Programme of the Foundation for Polish Science.

The main component of the biocathode developed at the IPC PAS is an enzyme surrounded by carbon nanotubes and encapsulated in a porous structure - a silicate matrix deposited on an oxygen permeable membrane. "Our group had been working for many years on techniques that were necessary to construct the cathode using enzymes, carbon nanotubes and silicate matrices", stresses Prof. Marcin Opałło (IPC PAS).

An electrode so constructed is installed in a wall of a small container. To have the biofuel cell working, it is enough to pour an electrolyte (here: a solution containing hydrogen ions) and insert the zinc electrode in the electrolyte. The pores in the silicate matrix enable oxygen supply from the air and H+ ions from the solution to active centres of the enzyme, where oxygen reduction takes place. Carbon nanotubes facilitate transport of electrons from the surface of the semipermeable membrane.

A cell with the new biocathode is able to supply power with a voltage of 1.6 V, for a minimum one and a half of a week. The cell efficiency decreases with time, likely because of gradual deactivation of the enzyme on the biocathode. "Here not everything is dependent on us, but on the progress in biotechnology. The lifetime of a biofuel cells with our biocathode could be significantly prolonged, if the enzyme regeneration processes are successfully developed", says Dr Jönsson-Niedziółka.

In the experiments carried out so far, a stack of four batteries connected in series successfully powered a lamp composed of two LEDs. Before, however, the biofuel cells based on the design developed at the IPC PAS get popularised, the researchers must solve the problem of relatively low electric power that is common to all types of biofuel cells.

The research presented here is important not only in view of the miniaturisation of power supply sources for medical implants, biosensors or light-emitting tattoos. The processes responsible for electricity generation in biofuel cells are potentially suitable for use in electric power generation in a larger scale. The limiting factors here are the properties of the enzymes, so that further advancement in this area is essentially dependent on the development of the biotechnology.

For more information, please click here

Contacts:
Prof. Marcin Opałło
Institute of Physical Chemistry of the Polish Academy of Sciences
tel. +48 22 3433375

Dr Martin Jönsson-Niedziółka
Institute of Physical Chemistry of the Polish Academy of Sciences
tel. +48 22 3433306

Copyright © AlphaGalileo
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Sunday, March 10, 2013

Man-made material pushes the bounds of superconductivity

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Man-made material pushes the bounds of superconductivity

A multi-university team of researchers has artificially engineered a unique multilayer material that could lead to breakthroughs in both superconductivity research and in real-world applications.

The researchers can tailor the material, which seamlessly alternates between metal and oxide layers, to achieve extraordinary superconducting properties — in particular, the ability to transport much more electrical current than non-engineered materials.

The team includes experts from the University of Wisconsin-Madison, Florida State University and the University of Michigan. Led by Chang-Beom Eom, the Harvey D. Spangler Distinguished Professor of materials science and engineering and physics at UW-Madison, the group described its breakthrough March 3, 2013, in the advance online edition of the journal Nature Materials.

Superconductors, which presently operate only under extremely cold conditions, transport energy very efficiently. With the ability to transport large electrical currents and produce high magnetic fields, they power such existing technologies as magnetic resonance imaging and Maglev trains, among others. They hold great potential for emerging applications in electronic devices, transportation, and power transmission, generation and storage.

Carefully layered superconducting materials are increasingly important in highly sophisticated applications. For example, a superconducting quantum interference device, or SQUID, used to measure subtle magnetic fields in magnetoencephalography scans of the brain, is based on a three-layer material.

However, one challenge in the quest to understand and leverage superconductivity is developing materials that work at room temperature. Currently, even unconventional high-temperature superconductors operate below -369 degrees Fahrenheit.

An unconventional high-temperature superconductor, the researchers' iron-based "pnictide" material is promising in part because its effective operating temperature is higher than that of conventional superconducting materials such as niobium, lead or mercury.

The research team engineered and measured the properties of superlattices of pnictide superconductors. A superlattice is the complex, regularly repeating geometric arrangement of atoms — its crystal structure — in layers of two or more materials. Pnictide superconductors include compounds made from any of five elements in the nitrogen family of the periodic table.

The researchers' new material is composed of 24 layers that alternate between the pnictide superconductor and a layer of the oxide strontium titanate. Creating such systems is difficult, especially when the arrangement of atoms, and chemical compatibility, of each material is very different.

Yet, layer after layer, the researchers maintained an atomically sharp interface — the region where materials meet. Each atom in each layer is precisely placed, spaced and arranged in a regularly repeating crystal structure.

The new material also has improved current-carrying capabilities. As they grew the superlattice, the researchers also added a tiny bit of oxygen to intentionally insert defects every few nanometers in the material. These defects act as pinning centers to immobilize tiny magnetic vortices that, as they grow in strength in large magnetic fields, can limit current flow through the superconductor. "If the vortices move around freely, the energy dissipates, and the superconductor is no longer lossless," says Eom. "We have engineered both vertical and planar pinning centers, because vortices created by magnetic fields can be in many different orientations."

Eom sees possibilities for researchers to expand upon his team's success in engineering man-made superconducting structures. "There's a need to engineer superlattices for understanding fundamental superconductivity, for potential use in high-field and electronic devices, and to achieve extraordinary properties in the system," says Eom. "And, there is indication that interfaces can be a new area of discovery in high-temperature superconductors. This material offers those possibilities."

Funding from the U.S. Department of Energy Office of Basic Energy Sciences, National Science Foundation, and the Air Force Office of Scientific Research supported the researchers' work. Eom's collaborators include Eric Hellstrom's and David Larbalestier's group at Florida State University; and Xiaoqing Pan's group at the University of Michigan.

Copyright © University of Wisconsin-Madison
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