Mostrando entradas con la etiqueta Materiales. Mostrar todas las entradas
Mostrando entradas con la etiqueta Materiales. Mostrar todas las entradas

jueves, 11 de septiembre de 2014

Scientists Create Solid Light


photo credit: Princeton University, Engineering School. 
By creating a "self-trapping regime" scientists have made light behave like a crystal

On a late summer afternoon it can seem like sunlight has turned to honey, but could liquid—or even solid—light be more than a piece of poetry? Princeton University electrical engineers say not only is it possible, they’ve already made it happen.

In Physical Review X, the researchers reveal that they have locked individual photons together so that they become like a solid object.

"It's something that we have never seen before," says Dr. Andrew Houck, an associate professor of electrical engineering and one of the researchers. "This is a new behavior for light."

The researchers constructed what they call an “artificial atom” made of 100 billion atoms engineered to act like a single unit. They then brought this close to a superconducting wire carrying photons. In one of the almost incomprehensible behaviors unique to the quantum world, the atom and the photons became entangled so that properties passed between the “atom” and the photons in the wire. The photons started to behave like atoms, correlating with each other to produce a single oscillating system.

As some of the photons leaked into the surrounding environment, the oscillations slowed and at a critical point started producing quantum divergent behavior. In other words, like Schroedinger's Cat, the correlated photons could be in two states at once.

"Here we set up a situation where light effectively behaves like a particle in the sense that two photons can interact very strongly," said co-author Dr. Darius Sadri. "In one mode of operation, light sloshes back and forth like a liquid; in the other, it freezes."

As cool as it is to produce solidified light, the team was not acting out of curiosity alone. When connected together the photons of light behave like subatomic particles, but are in some ways easier to study. Consequently, the team is hoping to use the solid light to simulate subatomic behavior.

Attempts to model the behavior of large numbers of particles usually use statistical mechanics, and often simplify by assuming no interaction between particles and a system at equilibrium. However, in a point we can all relate to, Houck and his colleagues note, “The world around us is rarely in equilibrium.” The solidified light offers a chance to observe a subatomic system as it starts to diverge from equilibrium, with potential for a basic understanding of how these systems operate.

The system created so far is very simple, with the light entangled with the atom at two points. However, it should be possible to increase this, greatly expanding the complexity and range of possibilities of what is being constructed.

As well as providing an easy-to-study model of atomic systems that actually exist, Houck and his team hope the frozen light could be made to behave like materials that do not exist, but have been hypothesised by physicists, allowing them to explore how these things would react if they were real.

ORIGINAL: IFLScience
by Stephen Luntz
September 11, 2014

martes, 26 de agosto de 2014

Biomimicry Chair Could Change Furniture as we Know It


A common complaint about 3D printing is that it is not capable of producing things in a wide range of materials. Industrial printers can currently print items from wood, metal, plastics, and… thats basically it. If you aren’t the owner of a successful manufacturing firm and you’re just an average consumer or hobbyist looking to try your hand at 3D printing, then the only available options for you come in the form of cheap, hard plastics like ABS and PLA. This would be great if you wanted to make figurines, jewelry for little girls or even handy devices, parts and gadgets. But if you wanted to print something bigger or softer, you simply couldn’t. Until now.

The Royal Academy of Art, The Hague graduate student Lilian van Daal has created a 3D printed chair out of a single recyclable material influenced by plant materials. The chair was made as an alternative to traditional furniture that is usually upholstered and glued together from many different materials, which makes it difficult to recycle.
Source: Dezeen

A lot of materials are used in normal furniture production, including several types of foam, and it’s very difficult to recycle because everything is glued together,” Van Daal told Dezeen.

Van Daal, a design student, decided to experiment with various materials and design methods to see if it would be possible to create environmentally-friendly furniture. By using 3D printing technology and mimicking plant cell structures, van Daal was able to produce the ‘Biomimicry’ chair.

Unlike most 3D printed objects, the biomimicry chair is not entirely hard. Van Daal mimicked plant cells by distributing the material differently at different parts of the chair. She decreased the density of the material in certain places and increased it in others. This enabled some sections of the chair to be soft and some to be hard – yet the entire chair was made from just one material.

Source: Dezeen

I was testing the flexibility and the stiffness you can get from one material by 3D printing various structures,” said Van Daal. “I did lots of experiments with different structures to identify the kind of properties each structure has. When you adjust the structure a little bit you immediately get a different function. In the strong parts I used as little material as possible but enough to still have the good stiffness.

According to Dezeen, Van Daal is currently in talks with furniture companies to discuss developing the project further. Not only is her concept much more environmentally-friendly than traditional furniture, but it also saves costs associated with purchasing multiple materials and having to transport them all separately to a factory. The ability to 3D print a soft, recyclable chair is a big step both for furniture and also for 3D printing technology, as the stigma of being able to print only rock hard objects is slowly diminishing.

ORIGINAL: Inside 3DP
15Aug 2014

viernes, 16 de mayo de 2014

Un inventor 100% colombiano

César Sierra, investigador de la U. Nacional, creó una tela que mata bacterias y una bolsa para enviar frutas a Europa, entre otros inventos.

César Sierra, químico e investigador de la Universidad Nacional. / Pablo Correa

El colombiano Juan Pablo Hinestroza, profesor en la Universidad de Cornell y experto en textiles inteligentes, cuenta que llevaba dos años y US$1,2 millones invertidos buscando el método para que pequeñas partículas conocidas como MOF (diminutas estructuras porosas) se adhirieran de forma estable a fibras de ropa, pero todos sus esfuerzos habían fracasado. Entonces alguien le habló de César Sierra, químico de la Universidad Nacional, y la suerte del proyecto cambió.

Sierra viajó a Estados Unidos y en tan sólo un mes de trabajo encontró la solución al problema que tenía desesperado a su colega. Patentaron en Estados Unidos la técnica para que las MOF queden adheridas a las fibras textiles. Hoy, varias multinacionales de ropa han mostrado su interés en la técnica, pues es un nuevo paradigma para crear telas con propiedades muy especiales. Por ejemplo fabricar jeans que no huelan cuando estén sucios o ropa interior que pueda durar hasta 45 días sin lavar.

César es el químico más recursivo que he conocido. Es brillante. Ahora creo en milagros después de ver cómo trabajan los científicos en Colombia”, dice Hinestroza. Esta semana los dos científicos colombianos, junto a los investigadores Carlos Soto, Haendel Rodríguez y Cristian Ochoa, firman un artículo publicado por la revista Journal of Applied Polymer en el que dan cuenta de otro invento prometedor: telas que matan bacterias.

Desde hace siglos se sabe que metales como la plata matan bacterias al entrar en contacto con ellas. No está muy clara la cadena de eventos celulares que conduce a la muerte de las bacterias, pero el efecto antibacterial de los metales es incuestionable. Bajo ese principio, Sierra y el grupo de colaboradores de ambas universidades lograron fijar nanopartículas de cobre a una tela y demostraron que el 100% de las bacterias Escherichia coli y Staphylococcus aureus, responsables de buen número de infecciones intrahospitalarias, mueren al entrar en contacto con la tela.

Con telas como estas se podrían fabricar sábanas de hospitales, uniformes de médicos y enfermeras, pijamas para los pacientes, y así reducir el riesgo de infecciones”, explica Sierra. Ahora el reto es lograr extender el efecto bactericida a otras bacterias que pululan en los hospitales. Sierra ya tiene una solución en mente. Cree que si logran que todas las partículas metálicas sean del mismo tamaño, la eficiencia bactericida aumentará y cubrirá un espectro mayor de microorganismos.

Cuando se graduó del colegio que dirigía su abuelo en Barrancabermeja, Sierra tenía dos cosas claras: quería ser militar y por ninguna razón se iba a quedar trabajando en la finca de su familia. Sus planes de ir al ejército se frustraron porque su mamá no lo autorizó. Entonces pensó en estudiar una carrera universitaria y la novia de su hermano, que estudiaba química en la Universidad Industrial de Santander (UIS), se ofreció a ayudarlo. Fue ella la responsable de que se convirtiera en químico, pues compró el formulario de inscripción y sin preguntarle lo anotó en la lista de candidatos a la carrera de química.

Fue amor a primera vista”, confiesa Sierra. En el colegio ya sentía interés por las matemáticas y la física, así que cuando comenzaron las clases sobre los elementos fundamentales de la materia y sus interacciones se sintió en el lugar correcto.

Cuando estaba entrando al último año de la carrera consiguió un trabajo con la multinacional Dow, que lo obligaba a viajar visitando clientes que tuvieran algún problema. Así se fue desarrollando su talento para solucionar situaciones difíciles. Cuando la empresa decidió irse del país, un colega volvió a señalarle el camino, como ya lo había hecho la novia de su hermano: “Usted debería estudiar un doctorado, usted es bueno para eso”.

Consiguió una beca y viajó a Estados Unidos, donde estudió una maestría y un doctorado en la Universidad de Massachusetts. En 2005 regresó a Colombia y, luego de un breve paso por la UIS, ganó un concurso docente en la Universidad Nacional y comenzó a trabajar en el Departamento de Química. Entre sus primeras creaciones está un material que al entrar en contacto con gases como el metano se ilumina; un desarrollo con potencial en la industria minera, pues podría hacer parte de los sistemas de seguridad para mineros.

Pero uno de los inventos que más lo enorgullecen es el desarrollo de un empaque para gulupa, una fruta de la cual Colombia exporta a Asia, Europa y América 3.000 toneladas cada año. Los exportadores colombianos se quejaban porque el largo viaje de casi 35 días que debe hacer la carga por barco hasta sus destinos terminaba arruinando el 25% de las frutas. Para evitar este desastre, los comerciantes se veían obligados a comprar unas bolsas fabricadas en Israel que conservan mejor la fruta, pero cuyo precio por unidad ronda los $400 pesos.

César y sus colaboradores desarrollaron un empaque a mucho menor precio ($10 pesos por unidad), que prolonga la vida de la fruta por más días y que evita su deshidratación. El problema, dos años después, es que no ha sido posible resolver todos los líos jurídicos en Colombia para patentar el invento.

Sierra no deja que esas cosas hagan mella en su optimismo y parece que no va a claudicar en su intento de acercar la investigación académica a los problemas de la industria en el país.

pcorrea@elespectador.com
@pcorrea78

ORIGINAL: El Espectador
Por: Pablo Correa
14 Mayo 2014

viernes, 11 de abril de 2014

Juicy ‘bio-organic nanotech’ can turbo-charge smartphone batteries in 60 seconds or less

Most smartphone’s batteries don’t even make it through a single day, especially if the person using the phone is frequently sending emails, posting on social media, listening to music, watching videos, and calling and texting, among other things. We consider ourselves lucky if it lasts after lunchtime.

But the biggest problem isn’t so much the battery dying, but charging the bloody things – with most devices it takes a good couple of hours at least to fully charge it. This depends on whether you’re still using your device while it juices up, and if you’re using an original charging cable. It takes longer when you use fake ones, and you’re putting your device and yourself at risk.

Wouldn’t it be great if someone came up with a way to rapid-charge our mobile phones in say, a matter of minutes – or even seconds?
Say ‘hi’ to bio-organic nanotech, your new best friend

It sure would, and so it’s good to know that Israeli startup StoreDot is working on a new type of battery for mobile devices that it claims can be fully charged in less than a minute.

Watch this video to see what it’s capable of:


If true that’s pretty damn impressive company, but how on earth can it do it that? Well, it’s pretty complicated, but the company, which launched in 2011, specializes in developing ‘peptide-based quantum dots’ that were originally discovered during Alzheimer’s research at Tel Aviv University.

Quantum dots, for all you non-nerdy types, are nanocrystals of semiconductor material where the physical dimensions allow quantum mechanics to effect electronic properties. Still with us?

Previously, quantum dots were made from toxic materials such as arsenic or heavy metals such as cadmium, meaning they were unsuitable for commercial use. Now though, StoreDot has found a way to use bio-organic materials, making the technology safer.

We were able to take the same peptides that participate in biological processes in our body and to create nano-crystals — these are stable, robust spheres,” explained Dr Doron Myersdorf, CEO and Founder or StoreDot, in an interview with TechCrunch.

The Nanodots are chemically synthesized organic peptide molecules that measure about 2nm in diameter. These are easily synthesized and show diverse electrochemical properties including red, green and blue luminescence. StoreDot’s previous focus was on creating faster memory chips, before it expanded to image sensors, and finally, better mobile batteries that charge faster.

StoreDot is showing off the fast-charging tech at the Think Next symposium in Tel Aviv. Though this is something consumers would obviously love to see on the next iPhone or Galaxy device, StoreDot says that the technology is still several years from mass production and market availability. The prototype is currently way too bulky, and according to Myersdorf, it will take one year for the company to replicate the technology at a smaller scale, and after that it’s still got to build a battery that actually fits inside one of today’s typical slim and sexy smartphones. And even after this, Myersdorf says we can expect to wait another two years to reach the required energy density so that our super-fast charging batteries can last for the entire day.

All of this means that we probably won’t see these fast-charging batteries in devices until at least 2016 at the earliest, and even then that’ll only be the case if OEMs are open to using this kind of technology.

The only disadvantage is that the industry is not ready for it. The ecosystem is not ready,” Myersdorf says.

This is a new type of material, with new physics, new chemistry, that is actually coming from nature… Everything we do we try to imitate and to follow and to let nature take its course. To create these nano-crystals we don’t need a huge fabrication facility. We mix some basic elements — like hydrogen, nitrogen, helium.”

StoreDot received $6.25 million in venture funding last year, and it’s hoping to make another $20 million in order for them to push forward with its bio-organic components. Samsung is said to be one of its early investors, which may mean its Galaxy devices will be among the first to utilize StoreDot’s technologies.

Myersdorf also pointed out that his vision for the company is for the industry as a whole to accept Nanodots as a “legitimate, viable, stable, cost-effective material” for use in semi-conductors, energy, storage, and displays, as it delivers advantages for both manufacturers and end-users.

ORIGINAL: Silicon Angle
April 8TH

domingo, 23 de febrero de 2014

Spinning fishing line and sewing thread into artificial muscle


Researchers have transformed everyday plastic fibers into super strong artificial muscles just by twisting them like rubber bands until they coil up.

Since these materials are cheaper than high-tech shape memory alloys and carbon nanotubes, the new technology could soon be widely applied, from robotics and prosthetics to clothing that adjusts to your temperature.


To be clear, the muscles I’m talking about are actuators, powerful rotating motors. Science explains:

The term “artificial muscles” is actually a bit of a grab bag that refers to materials that 
  • contract, 
  • expand, or
  •  rotate 
when 
  • heated, 
  • zapped with electricity, or 
  • hit with some other stimulus. 
The materials return to their original shape when the stimulus is reversed.
An international team of researchers led by Ray Baughman of University of Texas at Dallas wanted to twist plastic fibers and threads into yarn. Their “extreme twisting” of high-strength polymer fibers -- found in ordinary items such as fishing lines and sewing threads -- allowed the coiled plastic yarn to act like torsional muscles that can lift loads 100 times heavier than human muscles of the same length and weight.

Specifically, these muscles are powered by temperature changes: They contract lengthwise when heated and return to their initial length when cooled. Compared to natural muscles -- which contract by about 20 percent -- these new muscles contract by up to 50 percent of their length. Per weight, they can generate about the same mechanical power as a jet engine.

Today’s most advanced humanoid robots, prosthetic limbs and wearable exoskeletons are limited by motors and hydraulic systems, whose size and weight restrict dexterity, force generation and work capability,” Baughman says in a news release. These muscles can be used whenever superhuman strengths are needed, cheaply. Producing this force, Science reports, requires only off-the-shelf materials that cost about $5 per kilogram (or $10 a pound). According to the release:

Twisting together a bundle of polyethylene fishing lines, whose total diameter is only about 10 times larger than a human hair, produces a coiled polymer muscle that can lift 16 pounds. Operated in parallel, similar to how natural muscles are configured, 100 of these polymer muscles could lift about 1,600 pounds.

Here’s a cool video of the artificial muscle lifting weights:


On a smaller scale, they’ve woven textiles from the twisted yarns of polymer that can adjust to temperature changes. That means clothing that opens its pores to keep you cool and close them to warm you up, as well as window shutters that open and close to keep the temperature comfortable.


The work was published in Science this week.


Read more: UT Dallas news release, UBC release, Science, Popular Mechanics
Images: Science/AAAS (top) and University of Texas at Dallas (thumbnail)



ORIGINAL: Smart Planet
February 21, 2014

martes, 11 de febrero de 2014

Blooming marvellous! Pretty flowers that open up before your eyes are the world's first ever INFLATABLE 3D printed objects

Richard Clarkson created the design as part of his seamless blossom project
Flowers open as air is pumped into chambers, revealing a colourful core


They were produced using Objet’s 3D printer which is able to simultaneously print a mix of both a flexible and rigid material

As remarkable as 3D printing is, most objects created using the technique have, up until now, been limited to rigid structures.

But this could be about to change with a new generation of materials that are allowing designers to create morphing 3D designs.

Richard Clarkson from Victoria University of Wellington has become one of the first to make use of multi-material 3D printing by creating inflatable rubber-like flowers.

Scroll down for video...

MULTI-MATERIAL 3D PRINTING

As well as creating beautiful art installations, multi-material 3D printing aims reduce the number of manufacturing steps for one object.

it allows, for instance a working product to be created with different properties without the need to bring together separate components.

Experts claim it increases speed to market by allowing organisations to prototype increasingly complex parts. It also reduces waste products by using exactly the right amount of material required.

The flowers, created as part of the ‘seamless blossom project’, open up as air is pumped into inner chambers, revealing a colourful inner core.
Mr Clarkson claims they are the first ever inflatable objects to be created with 3D printing.


Basically, it’s a curved hollow chamber with flexible rubber. As you inflate it, it creates a gap of air that pushes against the inner layer, forcing the outer layers open. It almost blooms, like a flower,’ he said.


Recent advances in 3D printing now allow the simultaneous layering of different build materials in a single print



Incredible inflatable 3D printing technology shows flowers...


Seamless Blossom - Richard Clarkson (video)

A screenshot from the computer aided design (CAD) programme Richard Clarkson used to create the flowers


The flowers were created using Objet’s multi-material printer which is able to simultaneously print a mix of both a flexible and rigid material at point of print.


Mr Clarkson has designed his project as an interactive installation without any electronics, sensors or computer control, working only on air pressure.


It is the first in what experts are predicting could be a wave of 3D printed objects that use different materials to morph shape.


Last year, for instance, U.S. architect Skylar Tibbits announced a project to develop morphing materials in collaboration with Minneapolis-based group Stratasys

Mr Clarkson has designed his project as an interactive installation without any electronics, sensors or computer control, working only on air pressure


The flowers, created as part of the 'seamless blossom project' open up as air is pumped into inner chambers, revealing a colourful inner core


Mr Tibbits has now set up a radical lab at the Massachusetts Institute of Technology (MIT) to create materials that self-assemble.


Like Mr Clarkson, the MIT lab plans to use of multi-material 3D printing to programme different properties into various parts of a product’s geometry.


The idea is that these parts will have varying water-absorbing characteristics that activate a change in shape when they come into contact with moisture.

Te technique could lead to structures such as self-assembling furniture, or water pipes that know when to expand and contract.

Mr Clarkson claims these flowers are the first ever inflatable objects to be created using 3D printing

The technique could lead to structures such as self-assembling furniture, or water pipes that know when to expand and contract

ORIGINAL: Daily Mail
By Ellie Zolfagharifard
24 January 2014

domingo, 2 de febrero de 2014

Leila Madrone: Solar Energy Roboticist

Otherlab’s Leila Madrone is trying to make solar power finally work

 
Photo: Gabriela Hasbun Leila Madrone
IEEE member
Age 37

What she does Investigates ways to produce solar energy cheaply.
For whom Otherlab
Where she does it San Francisco
Fun factors Her office appears in the National Register of Historic Places.

Leila Madrone’s earliest aspiration was to work for the National Aeronautics and Space Administration. “When I was seven, I wore a black NASA jacket every single day,” says Madrone. A quarter century later, after earning two degrees and designing robots of all shapes and sizes at MIT, she attained that goal, landing a job at NASA’s Ames Research Center in Mountain View, Calif.


Her work there—on the GigaPan imaging project, a spin-off of the Mars rover missions—was enjoyable, but deep down she didn’t find it satisfying. Madrone wanted her toils to have greater social impact. So after careful thought, she decided to apply her background in robotics to solving some of the problems of renewable energy. Her new ambition is “to make solar energy actually work.” She’s now pursuing that objective at Otherlab in San Francisco, where she’s doing R&D that could one day make solar energy competitive with coal, even in the developing world.

Madrone didn’t expect to make significant inroads right away. Her first step was identifying a solar company that could use her skills in robotics so that she could learn more about the solar industry. At the time, GreenVolts, then based in Fremont, Calif., seemed to fill the bill. It was developing systems to concentrate sunlight on high-efficiency photovoltaic cells, so it needed equipment capable of tracking the sun precisely.This is great,” Madrone remembers thinking. “This is robots, but with a solar device on the end of it.”

After working at GreenVolts for a couple of years, Madrone began to have misgivings. “I started to realize how expensive it was to have a precision robot, a big metal precision robot, move around something to collect photons,” she says. “I didn’t see this being an energy source that’s going to change the world.

She was discouraged, too, by the economy, which at the time—2009—was taking a beating, causing GreenVolts to lay off most of her engineering colleagues. She decided to leave as well and travel overseas. As she had just gotten married, it would be an extended honeymoon but with a professional component. “I wanted to see how people actually interact with energy in the world,” says Madrone.

Her conclusion about solar energy after five months touring Europe, Asia, the Middle East, and Mexico? “It really had to be cheap,” she says. “It couldn’t just be cheap for someone in San Francisco or the U.S. It had to be cheap for people everywhere.

Returning to California, she wrote in some desperation to Saul Griffith, a friend from her MIT days. Griffith had recently founded Otherlab, which Madrone describes as being “like a cross between a start-up company and an academic lab.” By happy coincidence, he, too, had been toying with various solar-energy ideas, and he invited her to improve on his preliminary work.

Their premise was that equipment to harness the sun’s rays could be made very cheaply. If the manufacturing costs could be kept low, they reasoned, the price would be proportional to the mass and cost per kilogram of the constituent materials. So the key would be to use, as much as possible, stuff that is both lightweight and inexpensive. What stuff? The answer struck them as obvious. Solar energy’s future, to borrow a line from The Graduate, could be summed up in one word: plastics.

Madrone and Griffith eventually got funding from the Advanced Research Projects Agency–Energy (ARPA-E) to work on better ways to steer the mirrors of a solar-thermal-energy plant. These mirrors focus sunlight throughout the day on towers containing steam-driven generators. Mechanisms that accomplish that task—called heliostats—have been around for decades, but they are not cheap.

Madrone and Griffith realized that they could cut down on the heft required of the heliostats by using a huge number of small mirrors to replace what would normally be a smaller number of big ones. Small mirrors hug the ground and thus carry smaller wind loads. And small, light-duty heliostats could be built from plastic, following an approach that’s similar to the way certain flowering plants track the sun’s daily movements. “Originally, we were origami inspired, and now we’re bio inspired,” says Madrone.

Her latest prototype aims a mirror by varying the pressures within pneumatically inflated plastic chambers, which can be mass-produced with the same tooling used to make plastic bottles. “If we keep using heliostats that have been around for half a century, there’s no way the price is going to go down,” says Madrone. “If we don’t start taking advantage of new technologies, we’re just going to lose the solar game.

A typical workday for Madrone as she tries to win that game might entail consulting with outside experts, modeling electronics in SPICE (Simulation Program with Integrated Circuit Emphasis), writing reports for ARPA-E, laying out a printed-circuit board, preparing a patent application, or any combination of such tasks. And she gets to do those things in historic surroundings: a building in San Francisco’s Mission District that once housed a pipe-organ factory. With antique organ pipes adorning the walls and aging hardwood everywhere, the building retains a turn-of-the-20th-century air. Other projects being pursued there include inflatable robots, form-fitting fuel tanks for natural-gas cars, and an electric cargo tricycle that lets the rider lean into turns.

The engineers at Otherlab have tried to preserve their building’s Arts and Crafts aesthetic, foregoing steel desks for oak ones and using old library card catalogs in place of the usual plastic parts bins. Casual visitors could easily imagine they’ve wandered into the mad inventor’s lair from a steampunk novel.

Even more pleasant than the ambiance, Madrone explains, is the nature of the people she’s laboring alongside. “There’s this cultural bias that if you want a hard-core engineering company, everyone’s got to be intense and aggressive and arrogant and all of that,” she says. “Here people are confident but not arrogant, and thoughtful instead of aggressive.

Best of all for her, though, is knowing that her designs could have a real impact. “I think a dream job is getting to work on something that is really relevant that you’re passionate about every day,” she says. “For me, that is what the dream is.

This article originally appeared in print as “Solar-Energy Innovator.”


Dream Jobs 2014


ORIGINAL: IEEE Spectrum
By David Schneider
28 Jan 2014

miércoles, 29 de enero de 2014

Natural 3D Counterpart to Graphene Discovered in Arcane Form of Quantum Matter

The discovery of what is essentially a 3D version of graphene -- the 2D sheets of carbon through which electrons race at many times the speed at which they move through silicon -- promises exciting new things to come for the high-tech industry, including much faster transistors and far more compact hard drives. A collaboration of researchers at DOE's Berkeley Lab has discovered that sodium bismuthate can exist as a form of quantum matter called a three-dimensional topological Dirac semi-metal (3DTDS). This is the first experimental confirmation of 3D Dirac fermions in the interior or bulk of a material, a novel state that was only recently proposed by theorists.

Related Articles

Robust 3D Graphene Structures Curiously Created With Ancient Technique, Enabling Super-Capacitors

"A 3DTDS is a natural three-dimensional counterpart to graphene with similar or even better electron mobility and velocity," says Yulin Chen, a physicist with Berkeley Lab's Advanced Light Source (ALS) when he initiated the study that led to this discovery, and now with the University of Oxford.

"Because of its 3D Dirac fermions in the bulk, a 3DTDS also features intriguing non-saturating linear magnetoresistance that can be orders of magnitude higher than the materials now used in hard drives, and it opens the door to more efficient optical sensors." Chen is the corresponding author of a paper in Science reporting the discovery.

Two of the most exciting new materials in the world of high technology today are graphene and topological insulators, crystalline materials that are electrically insulating in the bulk but conducting on the surface. Both feature 2D Dirac fermions (fermions that aren't their own antiparticle), which give rise to extraordinary and highly coveted physical properties. Topological insulators also possess a unique electronic structure, in which bulk electrons behave like those in an insulator while surface electrons behave like those in graphene. 

(Photo : Roy Kaltschmidt)Beamline 10.0.1 at Berkeley Lab’s Advanced Light Source is optimized for the study of for electron structures and correlated electron systems.

"The swift development of graphene and topological insulators has raised questions as to whether there are 3D counterparts and other materials with unusual topology in their electronic structure," says Chen. "Our discovery answers both questions. In the sodium bismuthate we studied, the bulk conduction and valence bands touch only at discrete points and disperse linearly along all three momentum directions to form bulk 3D Dirac fermions. Furthermore, the topology of a 3DTSD electronic structure is also as unique as those of topological insulators."

The discovery was made at the Advanced Light Source (ALS), a DOE (U.S. Department of Energy) national user facility housed at Lawrence Berkeley National Laboratory, using beamline 10.0.1, which is optimized for electron structure studies. The collaborating research team first developed a special procedure to properly synthesize and transport the sodium bismuthate, a semi-metal compound identified as a strong 3DTDS candidate by co-authors Fang and Dai, theorists with the Chinese Academy of Sciences.

At ALS beamline 10.0.1, the collaborators determined the electronic structure of their material using Angle-Resolved Photoemission Spectroscopy (ARPES), in which x-rays striking a material surface or interface cause the photoemission of electrons at angles and kinetic energies that can be measured to obtain a detailed electronic spectrum.

Sodium bismuthate is too unstable to be used in devices without proper packaging, but it triggers the exploration for the development of other 3DTDS materials more suitable for everyday devices, a search that is already underway. Sodium bismuthate can also be used to demonstrate potential applications of 3DTDS systems, which offer some distinct advantages over graphene.

"A 3DTDS system could provide a significant improvement in efficiency in many applications over graphene because of its 3D volume," Chen says. "Also, preparing large-size atomically thin single domain graphene films is still a challenge. It could be easier to fabricate graphene-type devices for a wider range of applications from 3DTDS systems."

In addition, Chen says, a 3DTDS system also opens the door to other novel physical properties, such as giant diamagnetism that diverges when energy approaches the 3D Dirac point, quantum magnetoresistance in the bulk, unique Landau level structures under strong magnetic fields, and oscillating quantum spin Hall effects. All of these novel properties can be a boon for future electronic technologies. Future 3DTDS systems can also serve as an ideal platform for applications in spintronics. -- Source: Lawrence Berkeley Laboratory


Reference:
Z. K. Liu, B. Zhou, Y. Zhang, Z. J. Wang, H. M. Weng, D. Prabhakaran, S.-K. Mo, Z. X. Shen, Z. Fang, X. Dai, Z. Hussain, Y. L. Chen. Discovery of a Three-Dimensional Topological Dirac Semimetal, Na3Bi. Science, 2014 DOI: 10.1126/science.124508

ORIGINAL:Science World Report
Jan 19, 2014

viernes, 17 de enero de 2014

World-first working eukaryotic cell made from plastic



Researchers at the Institute for Molecules and Materials at Radboud University Nijmegen used a water droplet as the structure upon which they built the first polymer cell

Previously, chemists have managed to create artificial cell walls and developed synthetic DNA to produce self-replicating, synthetic bacterial cells. Now, for the first time, researchers have used polymers to produce an artificial eukaryotic cell capable of undertaking multiple chemical reactions through working organelles.

Eukaryotic cells are the building blocks for complex life-forms like plants and animals. The main distinction between the simpler and more ancient prokaryotic cells and eukaryotes is the presence of organelles in the latter. Organelles are specialized subunits within a cell that have a specific function, and which allow cells to undertake multiple chemical processes in an extremely small space.

This compartmentalization was one of the key features developed by nature during the early evolution of early life on Earth. It is also of interest to chemists as eukaryotic cells are capable of efficient chemistry at a very small scale, something which is difficult to replicate in the lab. That might be all about to change now chemists at Radboud University Nijmegen in The Netherlands have built the world’s first eukaryotic cell using plastic.

Competing groups are working closer to biology; making cells from fatty acids, for example. We would like to do the same in the future," says Professor Jan van Hest who created the organelles with his PhD candidate Ruud Peters. "Another step would be to make cells that produce their own energy supply."

The researchers used a water droplet as the structure upon which they built the polymer cell. To create the organelles, they produced tiny polystyrene-b-poly spheres filled with enzymes designed to undertake set chemical processes. These sub-micrometric nanoreactors were then encapsulated in a coating of a polymer called polybutadiene-b-poly polymersome using emulsion-centrifugation to form a cell wall.

This formed a compartmentalized structure resembling nature’s eukaryotic cell. Within this, a multistep chemical reaction was undertaken which resembled a natural enzyme pathway. Using fluorescence, van Hest and Peters were able to show a chain of chemical reactions within the cell, proof they had created a polymer cell with working organelles.

"We are also working on ways of controlling the movement of chemicals within the cell, towards organelles," says van Hest. "By simulating these things, we are able to better understand living cells. One day we will even be able to make something that looks very much like the real thing."

Their work was published in the journals Angewandte Chemie and highlighted in Nature Chemistry.



ORIGINAL: GizMag
January 15, 2014

viernes, 3 de enero de 2014

Getting CLARITY: Hydrogel process developed at Stanford creates transparent brain

Stanford bioengineers have transformed an intact, post-mortem mouse brain into a transparent three-dimensional structure that keeps all the fine wiring and molecular structures in place. Known as CLARITY, the technique stands to transform our understanding of the brain and indeed of any biological tissue.
Combining neuroscience and chemical engineering, researchers at Stanford University have developed a process that renders a mouse brain transparent. The postmortem brain remains whole — not sliced or sectioned in any way — with its three-dimensional complexity of fine wiring and molecular structures completely intact and able to be measured and probed with visible light and chemicals.

The process, called CLARITY, ushers in an entirely new era of whole-organ imaging that stands to fundamentally change our scientific understanding of the most important, but least understood of organs, the brain, and potentially other organs, as well.

The process is described in a paper to be published online April 10 in Nature by bioengineer and psychiatrist Karl Deisseroth leading a multidisciplinary team, including postdoctoral scholar Kwanghun Chung.

Studying intact systems with this sort of molecular resolution and global scope — to be able to see the fine detail and the big picture at the same time — has been a major unmet goal in biology, and a goal that CLARITY begins to address,” Deisseroth said.



CLARITY provides the ability to do a fly-through of an intact mouse brain using a fluorescent imaging technique on a complete brain that previously could only be performed on a brain sectioned into thin slices. (Video: Karl Deisseroth and Kwanghun Chung, Stanford University)

This feat of chemical engineering promises to transform the way we study the brain’s anatomy and how disease changes it,” said Thomas Insel, MD, director of the National Institute of Mental Health. “No longer will the in-depth study of our most important three-dimensional organ be constrained by two-dimensional methods.

The research in this study was performed primarily on a mouse brain, but the researchers have used CLARITY on zebrafish and on preserved human brain samples with similar results, establishing a path for future studies of human samples and other organisms.

CLARITY promises to revolutionize our understanding of how local and global changes in brain structure and activity translate into behavior,” said Paul Frankland, PhD, a senior scientist in neurosciences and mental health at the Hospital for Sick Children Research Institute in Toronto, who was not involved in the research. Frankland’s colleague, senior scientist Sheena Josselyn, PhD, added that the process could turn the brain from “a mysterious black box” into something essentially transparent. 

An inscrutable place

The mound of convoluted grey matter and wiring that is the brain is a complex and inscrutable place. Neuroscientists have struggled to fully understand its circuitry in their quest to comprehend how the brain works, and why, sometimes, it doesn’t.

CLARITY is the result of a research effort in Deisseroth’s lab to extract the opaque elements — in particular the lipids — from a brain and yet keep the important features fully intact. Lipids are fatty molecules found throughout the brain and body. In the brain, especially, they help form cell membranes and give the brain much of its structure. Lipids pose a double challenge for biological study, however, because they make the brain largely impermeable both to chemicals and to light.

Neuroscientists would have liked to extract the lipids to reveal the brain’s fine structure without slicing or sectioning, but for one major hitch: removing these structurally important molecules causes the remaining tissue to fall apart.

Prior investigations have focused instead on automating the slicing/sectioning approach, or in treating the brain with organic molecules that facilitate the penetration of light only, but not macromolecular probes. With CLARITY, Deisseroth’s team has taken a fundamentally different approach.

“We drew upon chemical engineering to transform biological tissue into a new state that is intact but optically transparent and permeable to macromolecules,” said Chung, the paper’s first author.

This new form is created by replacing the brain’s lipids with a hydrogel. The hydrogel is built from within the brain itself in a process conceptually similar to petrification, using what is initially a watery suspension of short, individual molecules known as hydrogel monomers. The intact, postmortem brain is immersed in the hydrogel solution and the monomers infuse the tissue. Then, when “thermally triggered,” or heated slightly to about body temperature, the monomers begin to congeal into long molecular chains known as polymers, forming a mesh throughout the brain. This mesh holds everything together, but, importantly, it does not bind to the lipids.

With the tissue shored up in this way, the team is able to vigorously and rapidly extract lipids through a process called electrophoresis. What remains is a 3-D, transparent brain with all of its important structures — neurons, axons, dendrites, synapses, proteins, nucleic acids and so forth — intact and in place.

Going things one better

CLARITY then goes one better. In preserving the full continuity of neuronal structures, CLARITY not only allows tracing of individual neural connections over long distances through the brain, but also provides a way to gather rich, molecular information describing a cell’s function is that is not possible with other methods.

We thought that if we could remove the lipids nondestructively, we might be able to get both light and macromolecules to penetrate deep into tissue, allowing not only 3-D imaging, but also 3-D molecular analysis of the intact brain,” said Deisseroth, who holds the D.H. Chen Professorship.

Using fluorescent antibodies that are known to seek out and attach themselves only to specific proteins, Deisseroth’s team showed that 
  • it can target specific structures within the CLARITY-modified — or “clarified” — mouse brain and 
  • make those structures and only those structures light up under illumination. The researchers 
  • can trace neural circuits through the entire brain or 
  • explore deeply into the nuances of local circuit wiring. They 
  • can see the relationships between cells and 
  • investigate subcellular structures. They
  • can even look at chemical relationships of protein complexes, nucleic acids and neurotransmitters.
Being able to determine the molecular structure of various cells and their contacts through antibody staining is a core capability of CLARITY, separate from the optical transparency, which enables us to visualize relationships among brain components in fundamentally new ways,” said Deisseroth, who is one of 15 experts on the “dream team” that will map out goals for the $100 million brain research initiative announced April 2 by President Obama.

A three-dimensional rendering of clarified brain imaged from below (ventral half). (Image: Courtesy of the Deisseroth lab)

And in yet another significant capability from a research standpoint, researchers are now able to destain the clarified brain, flushing out the fluorescent antibodies and repeating the staining process anew using different antibodies to explore different molecular targets in the same brain. This staining/destaining process can be repeated multiple times, the authors showed, and the different data sets aligned with one another.

Opening the door

CLARITY has accordingly made it possible to perform highly detailed, fine-structural analysis on intact brains — even human tissues that have been preserved for many years, the team showed. Transforming human brains into transparent-but-stable specimens with accessible wiring and molecular detail may yield improved understanding of the structural underpinnings of brain function and disease.

Beyond the immediate and apparent benefit to neuroscience, Deisseroth cautioned that CLARITY has leapfrogged our ability to deal with the data. “Turning massive amounts of data into useful insight poses immense computational challenges that will have to be addressed. We will have to develop improved computational approaches to image segmentation, 3-D image registration, automated tracing and image acquisition,” he said.

Indeed, such pressures will increase as CLARITY could begin to support a deeper understanding of large-scale intact biological systems and organs, perhaps even entire organisms.

Of particular interest for future study are intrasystem relationships, not only in the mammalian brain but also in other tissues or diseases for which full understanding is only possible when thorough analysis of single, intact systems can be conducted,” Deisseroth said. “CLARITY may be applicable to any biological system, and it will be interesting to see how other branches of biology may put it to use.

Other co-authors include undergraduate student Jenelle Wallace; graduate students Sung-Yon Kim, Kelly Zalocusky, Joanna Mattis, Aleksandra Denisin and Logan Grosenick; research assistants Sandhiya Kalyanasundaram, Julie Mirzabekov, Sally Pak and Charu Ramakrishnan; postdoctoral scholars Aaron Andalman, PhD, and Tom Davidson, PhD; former undergraduate student Hannah Bernstein; and former staff scientist Viviana Gradinaru.

The research is supported by the National Institute of Mental Health (grant MH099647); the National Science Foundation; the Simons Foundation; the President and Provost of Stanford University; the Wiegers, Snyder, Reeves, Gatsby and Yu foundations; the DARPA REPAIR program; and the Burroughs Wellcome Fund.

Information about Stanford’s Department of Bioengineering, which also supported the work, is available at http://bioengineering.stanford.edu. The department is jointly operated by the School of Engineering and the School of Medicine.

Andrew Myers is associate director of communications for the Stanford University School of Engineering.


ORIGINAL: Stanford U
Andrew Myers | Stanford Engineering 

 Tom Abate
tabate@stanford.edu
Jamie Beckett
jbeckett@stanford.edu
April 10, 2013

viernes, 27 de diciembre de 2013

Ants That Can Flow Like a Fluid, or Move Like a Solid

ScienceTake: They can flow like a liquid and bounce back like a solid. Masses of fire ants show a duality that intrigues physicists.

Fire ants
, those stinging pests that are all too familiar to Southerners, have gotten plenty of attention from scientists — but not from physicists.

Usually the issue is how to stop the spread of the most problematic of the different species, or figure out why the sting is so painful. But scientists at the Georgia Institute of Technology, including Zhongyang Liu and David Hu, were interested in the ways that a mass — or you might say, a mess — of fire ants can act like a fluid or a solid, depending on the situation. It’s the first time this duality had been observed in a group of living things.

In a presentation at a meeting of the American Physical Society last month the researchers showed video of the ants pouring out of a funnel, like some thick and wriggling syrup, and also springing back into a rough ball shape after being pressed down.

These images illustrated the findings of the more technical research, done with rheometers to measure the precise viscosity and elasticity of balls of ants under stress. The researchers found that in different situations the ants behaved differently.

To flow, they moved around, rearranging themselves in the group, acting like a thick fluid. When the aggregation struggled to keep its shape, the ants clung to each other, acting like an elastic solid — rubber for example.

The research could have practical implications, Dr. Hu said, for self-assembling robots, which build themselves out of smaller bits and for self-healing materials.

In bridge construction, for instance, interest is great in materials that automatically repair cracks. The ants are experts at this kind of repair. When they turn themselves into a bridge for other ants, which they do often, they scramble to quickly repair breaks in any damage to the structure.



ORIGINAL: NYTimes

sábado, 23 de noviembre de 2013

Stanford study could lead to paradigm shift in organic solar cell research

A new study by Stanford scientists overturns a widely held explanation for how organic photovoltaics turn sunlight into electricity.
Organic solar cells have long been touted as lightweight, low-cost alternatives to rigid solar panels made of silicon. Dramatic improvements in the efficiency of organic photovoltaics have been made in recent years, yet the fundamental question of how these devices convert sunlight into electricity is still hotly debated.

Now a Stanford University research team is weighing in on the controversy. Its findings, published in the Nov. 17 issue of the journal Nature Materials, indicate that the predominant working theory is incorrect and could steer future efforts to design materials that boost the performance of organic cells.

"We know that organic photovoltaics are very good," said study coauthor Michael McGehee, a professor of materials science and engineering at Stanford. "The question is, why are they so good? The answer is controversial."

A typical organic solar cell consists of two semiconducting layers made of plastic polymers and other flexible materials. The cell generates electricity by absorbing particles of light, or photons.
When the cell absorbs light, a photon knocks out an electron in a polymer atom, leaving behind an empty space, which scientists refer to as a hole. The electron and the hole immediately form a bonded pair called an exciton. The exciton splits, allowing the electron to move independently to a hole created by another absorbed photon. This continuous movement of electrons from hole to hole produces an electric current.

In the study, the Stanford team addressed a long-standing debate about what causes the exciton to split.

"To generate a current, you have to separate the electron and the hole," said senior author Alberto Salleo, an associate professor of materials science and engineering at Stanford. "That requires two different semiconducting materials. If the electron is attracted to material B more than material A, it drops into material B. In theory, the electron should remain bound to the hole even after it drops.

"The fundamental question that's been around a long time is, how does this bound state split?"
Some like it hot One explanation widely accepted by scientists is known as the "hot exciton effect." The idea is that the electron carries extra energy when it drops from material A to material B. That added energy gives the excited ("hot") electron enough velocity to escape from the hole.

But that hypothesis did not stand up to experimental tests, according to the Stanford team.

"In our study, we found that the hot exciton effect does not exist," Salleo said. "We measured optical emissions from the semiconducting materials and found that extra energy is not required to split an exciton."

So what actually causes electron-hole pairs to separate?
Stanford scientists may have resolved a debate about how organic solar cells turn sunlight into electricity. The question: What causes electron-hole pairs (excitons) to split apart? The likely answer: A gradient at the solar cell interface between disordered polymers and ordered buckyballs splits the exciton, allowing the electron (purple) to escape and produce an electric current. (Koen Vandewal / Stanford University)
"We haven't really answered that question yet," Salleo said. "We have a few hints. We think that the disordered arrangement of the plastic polymers in the semiconductor might help the electron get away."

In a recent study, Salleo discovered that disorder at the molecular level actually improves the performance of semiconducting polymers in solar cells. By focusing on the inherent disorder of plastic polymers, researchers could design new materials that draw electrons away from the solar cell interface where the two semiconducting layers meet, he said.

"In organic solar cells, the interface is always more disordered than the area farther away," Salleo explained. "That creates a natural gradient that sucks the electron from the disordered regions into the ordered regions. "
Improving energy efficiency The solar cells used in the experiment have an energy-conversion efficiency of about 9 percent. The Stanford team hopes to improve that performance by designing semiconductors that take advantage of the interplay between order and disorder.

"To make a better organic solar cell, people have been looking for materials that would give you a stronger hot exciton effect," Salleo said. "They should instead try to figure out how the electron gets away without it being hot. This idea is pretty controversial. It's a fundamental shift in the way people think about photocurrent generation."

Other authors of the paper are Koen Vandewal (lead author), Erik Hoke, William Mateker, Jason Bloking and George Burkhard of Stanford; Steve Albrecht, Marcel Schubert and Dieter Neher of the University of Potsdam; Johannes Widmer and Moritz Riede of the Institute for Applied Photophysics (IAPP); Jessica Douglas and Jean Frechet of the University of California-Berkeley; Aram Amassian of the King Abdullah University of Science and Technology (KAUST); and Alan Sellinger of the Colorado School of Mines and the University of Oxford. Author Kenneth Graham has a joint postdoctoral fellowship with Stanford and KAUST.

Support for the study was provided by the Stanford Center for Advanced Molecular Photovoltaics and the U.S. Department of Energy.

ORIGINAL: Stanford Engineering
By Mark Schwartz | Precourt Institute for Energy 
Tuesday, November 19, 2013

Mark Shwartz writes about energy technology for the Precourt Institute for Energy at Stanford University.
For more Stanford experts on energy and other topics, visit Stanford Experts.

lunes, 30 de septiembre de 2013

Stanford, SLAC researchers demonstrate 'accelerator on a chip'

The tiny new technology could spawn new generations of smaller, less expensive devices for science and medicine.

The nanostructured glass chip is smaller than a grain of rice. Photo: Brad Plummer
In an advance that could dramatically shrink particle accelerators for science and medicine, researchers used a laser to accelerate electrons at a rate 10 times higher than conventional technology in a nanostructured glass chip smaller than a grain of rice.

The achievement was reported today in the journal Nature by a team including scientists from the U.S. Department of Energy's SLAC National Accelerator Laboratory and Stanford University.

"We still have a number of challenges before this technology becomes practical for real-world use, but eventually it would substantially reduce the size and cost of future high-energy particle colliders for exploring the world of fundamental particles and forces," said Joel England, the SLAC physicist who led the experiments.

"It could also help enable compact accelerators and X-ray devices for security scanning, medical therapy and imaging, and research in biology and materials science."

Because it employs commercial lasers and low-cost, mass-production techniques, the researchers believe it will set the stage for new generations of "tabletop" accelerators.

At its full potential, the new "accelerator on a chip" could match the accelerating power of SLAC's 2-mile-long linear accelerator in just 100 feet, and deliver a million more electron pulses per second.

This initial demonstration achieved an acceleration gradient, or amount of energy gained per length of the accelerator, of 300 million electronvolts per meter. That's roughly 10 times the acceleration provided by the current SLAC linear accelerator.

"Our ultimate goal for this structure is one billion electronvolts per meter, and we're already one-third of the way in our first experiment," said Stanford applied physics Professor Robert Byer, the principal investigator for this research.

Today's accelerators use microwaves to boost the energy of electrons. Researchers have been looking for more economical alternatives, and this new technique, which uses ultrafast lasers to drive the accelerator, is a leading candidate.

Particles are generally accelerated in two stages. 
  • First they are boosted to nearly the speed of light. 
  • Then any additional acceleration increases their energy, but not their speed; this is the challenging part.
In the accelerator-on-a-chip experiments, electrons are first accelerated to near light-speed in a conventional accelerator. Then they are focused into a tiny, half-micron-high channel within a glass chip just half a millimeter long. The channel had earlier been patterned with precisely spaced nanoscale ridges. Infrared laser light shining on the pattern generates electrical fields that interact with the electrons in the channel to boost their energy. (View animation for more detail.)

Turning the accelerator on a chip into a full-fledged tabletop accelerator will require a more compact way to get the electrons up to speed before they enter the device.

A collaborating research group in Germany, led by Peter Hommelhoff at Friedrich Alexander University and the Max Planck Institute of Quantum Optics, has been looking for such a solution. It simultaneously reports in Physical Review Letters its success in using a laser to accelerate lower-energy electrons.

Applications for these new particle accelerators would go well beyond particle physics research. Byer said laser accelerators could drive compact X-ray free-electron lasers, comparable to SLAC's Linac Coherent Light Source, that are all-purpose tools for a wide range of research.

Another possible application is small, portable X-ray sources to improve medical care for people injured in combat, as well as to provide more affordable medical imaging for hospitals and laboratories. That's one of the goals of the Defense Advanced Research Projects Agency's Advanced X-Ray Integrated Sources program, which partially funded this research. Primary funding for this research is from the U.S. Department of Energy Office of Science.

The study's lead authors were Stanford graduate students Edgar Peralta and Ken Soong. Peralta created the patterned fused silica chips in the Stanford Nanofabrication Facility. Soong implemented the high-precision laser optics for the experiment at SLAC's Next Linear Collider Test Accelerator. Additional contributors included researchers from the University of California-Los Angeles and Tech-X Corp. in Boulder, Colo.

SLAC is a multi-program laboratory exploring frontier questions in photon science, astrophysics, particle physics and accelerator research. SLAC is operated by Stanford University for the U.S. Department of Energy Office of Science.

Mike Ross is a science writer at the SLAC National Accelerator Laboratory.
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ORIGINAL: Stanford
By Mike Ross
September 27, 2013