Tuesday, 16 February 2010

Johnald's Fantastical Daily Link Splurge

Johnald's Fantastical Daily Link Splurge


$100 DIY Shelter Could Help Homeless Haitians

Posted: 15 Feb 2010 09:00 PM PST

hexayurt_carry

With just $100 worth of plywood and screws, almost anyone can build a shelter known as a Hexayurt that can last three years and possibly even withstand a hurricane. The simple DIY structure could be a critical temporary solution for some of the estimated 1 million or more people left homeless in quake-torn Haiti.

Aid agencies have distributed around 10,000 tents to Haiti so far, according to to the International Organization for Migration (IOM), one of the dozens of charity groups in Haiti focused on emergency shelter. But 200,000 are needed, and even then, the tents won't stand up to the weather.

"Tents are a three to five month option in the midst of the dry season," said Vincent Houver, IOM Chief of Mission in Haiti, in a recent press release. "But emergency and transitional shelter solutions sufficiently durable to last at least two years need to be found before the heavy rains arrive in a few months."

Tents do have the benefit of a supply chain already in place that makes it easy to ramp up production when disaster strikes, and they can be transported to remote sites and set up relatively quickly. But they run around $300 to $400 and only last about a year, in good weather.

"Once those tents are shredded, people are homeless again," said Vinay Gupta, a self-taught risk management consultant and inventor of the Hexayurt.

hexayurt_burning_man_2008In addition to being longer lived, the Hexayurt is both easy to assemble and cheap. I built my own for Burning Man in 2008 from fire-safe insulation board and industrial tape. It took a couple of hours to make the pieces at home and an hour or two with some friends to assemble it on site. My cozy abode withstood fierce dust storms that lasted for hours and maintained a comfortable temperature that allowed me to sleep until noon, long after the blazing sun had driven my campmates from their tents.

At 70 square feet, my six-foot "stretch" Hexayurt was big enough for one and required only seven sheets of insulation board. A Haitian family of five would need a bigger structure made of plywood. Eighteen sheets will build a 276 square foot structure with four foot tall exterior walls or a 166 square foot structure with eight foot exterior walls.

"I have no doubt whatsoever that this concept could work in Haiti," said Linton Wells of National Defense University in Washington, DC, founder of Transformative Innovation for Development and Emergency Support.

Wells field-tested Hexayurts made of foil-backed insulation board in the mountains of West Virginia. They survived 60 to 70 mile-per-hour winds, and only gave away when they were attacked by bears.

Materials for an entire Hexayurt village can be delivered on one flatbed truck. The hexagonal design makes it easy to add rooms by "honeycombing" more Hexayurts to the original structure. Families can build their own home or use local labor, which has the added benefit of developing skills needed to maintain the local economy.

And at five dollars per plywood sheet, $100 will cover the cost of the basic building materials. Painted, a plywood Hexayurt should last up to three years, and Gupta says it's sturdy enough to survive the Haitian rainy season, and much worse. Science for Humanity is organizing structural analysis to see how the Hexayurt will respond to the hurricane conditions arriving soon in Haiti.

Plywood is plentiful and used worldwide, so supply chain issues are minimal. "And you can never have enough plywood in a disaster. You can use it fix damn near anything," Gupta said. Atlanta-based Courageous Church is currently shipping plywood to Haiti and mobilizing 50-100 volunteers to build Hexayurts on site during spring break.

Emergency shelters must be able to adapt to the local conditions on site, said Bruce LeBel, executive director of World Shelters, a non-profit organization that designs, builds and delivers emergency structures.

worldshelter_jas_exteriorWorld Shelters has designed different types of structures including The Buckminster Fuller-inspired U-Dome and the frameless, hard-shell TranShel, but these are meant to be longer-term transitional structures that cost $2,000 and last 10 years.

What's needed in Haiti are flexible designs that can be built on site with local labor, not ready-made structures, LeBel said. "It's really important that emergency shelters adapt to the context."

Right now, he says aid agencies in Haiti are looking for ways to use 200,000 sheets of lightweight plastic that were scheduled to arrive this week. Currently, Haitians are using the sheets any way they can, sometimes attaching them to the sides of wrecked buildings or other structures. World Shelters has offered their design called JAS (Just Add Sticks) which is a framing system for the plastic that uses materials such as bamboo as corner connectors.

Haiti EarthquakeThe need for temporary housing following a disaster has inspired many other designs as well. One already in use in Haiti is ShelterBox, invented by Rotary International, a worldwide service club organization. The sturdy plastic boxes are packed with a tent, basic tools, and survival equipment specific to local conditions such as water purifiers, and insulated ground sheets.

On average, a ShelterBox costs $780, including packaging, delivery and distribution. But they still use tents, with numerous small parts that can break or become lost. Nonetheless, seven thousand have so far been deployed in Haiti. The photo taken Feb. 2 shows a camp with 400 ShelterBox tents that house thousands of Haitians.

recover_shelter_cropThe crazy-looking reCover Shelter was designed for a class project by four Syracuse University students. Like a giant accordian, the structure is collapsible and customizable. It consists of 12 4-by-8-foot sheets of pre-cut and pre-folded polypropylene that simply need to be joined at the corners with zip ties and tethered to the ground on site. It's larger than a relief tent and can be set up in minutes.

Designer Matt Malone estimated the shelters would last a few weeks and could be recycled into new sheets of polypropylene after use. So far, Malone and his co-designers have built one full-scale prototype, which cost less than $200 at retail prices. To mass-produce the customized sheets would require adding two simple steps to the manufacturing process, he said.

In order to move beyond tent cities, Haiti will need transitional housing that is sturdy and scalable. It should utilize local resources whenever possible, and it must be cheap. Otherwise, said Gupta, "There is not enough money on the table to take care of Haiti. We're sticking a band-aid on a gunshot wound."

Images: 1) Hexayurt/Vinay Gupta. 2) Hexayurt at 2008 Burning Man/Renee Davidson. 3) World Shelters JAS design/Kurt Therkelsen. 4) ShelterBox camp in Haiti/ShelterBox. 5) reCover Shelter/Matt Malone.

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New Close-Ups of Saturn’s Moons Mimas and Calypso

Posted: 15 Feb 2010 04:37 PM PST

<< previous image | next image >>







NASA's Cassini spacecraft took a swing by Saturn's moons Mimas and Calypso over the weekend and sent back some fantastic shots released today.

Mimas is the 20th in size of Saturn's 62 moons with a diameter of about 246 miles, and it may be the smallest body in the solar system that has been rounded by gravitational forces. It isn't completely round, however, as can be seen in the image above, taken from around 15,000 miles away. Tidal forces have made its longest axis 10 percent greater than its shortest.

Calypso, seen in the second image of this gallery, is a tiny, odd-shaped moon that was only discovered 30 years ago. It has one of the most reflective surfaces in the solar system, having been sandblasted by particles in Saturn's E-ring, emitted by the plumes of the moon Enceladus.

Thanks to a recent life extension for the Cassini spacecraft, which has beenexploring Saturn since 2004, we will be enjoying more images like these until 2017.

Image: NASA/JPL/CICLOPS/Josh Riley

Fog Decline Threatens California’s Towering Redwoods

Posted: 12 Feb 2010 10:00 AM PST

foggyredwood1

The California coast has seen fewer foggy days in the last century, threatening the health of the region's majestic redwood trees.

Over the last century,new research suggests the average daily fog has decreased more thanthree hours, causing the coast redwoods to lose more water in the dry summer season, leaving them more susceptible to drought.

"Redwoods are an iconic species and we all love them, but I think it's important to note that lots and lots of species depend on fog," said climate scientist Phil Duffy of Climate Central in Palo Alto, California, who was not involved in the study. "So if you really do increase or decrease the fog, then that will have effects on whole entire ecosystems in these coastal hills."

The habitat of the Sequoia sempervirens is confined to a misty, 30 mile-wide strip along the California coast, stretching from Big Sur in Central California to just north of the Oregon border. The giant trees can reach 380 feet tall and livemore than 2,000years.

Fog isone reason the trees are able to grow so tall. They have developed the ability to absorb as much as 40 percent of their water directly from the fog. Without this adaptation, the trees would not be able to move water from their roots all the way to their tops.

Fog often rolls ashore along the California coast from June through September.The hot, dry inland air rises and creates a vacuum that sucks in the cold, vaporous air from over the ocean, said biologist Todd Dawson of the University of California, Berkeley, co-author of the study Monday Proceedings of the National Academy of Sciences. The fog keeps the colossal trees cool and moist, even when the areas just 50 miles inland are hot and dry.

The behavior of fog has been difficult tocapture with computer climate models, but arecent modeling study suggested global warming would lead to a foggier coastline. So Dawson's team wanted to see what the historical record actually showed.

To determine how summer fog had changed over time, the team analyzed hourly sightings of fog that were recorded from 1951 to 2008 at one airport in Arcata, near the northern edge of the trees' range, and one in Monterey, near the southern end. Any low hanging cloud cover at or below 1,300 feet was considered fog.

Overthe past 58 years, the coastal fog hasdecreased byabout 1.3 hours a day, said climate scientist James Johnstone of the University of Washington, lead author of the study.

They also mined temperature, humidity, and wind data from across California, Oregon, and Washington from the same period to see if there there were any trends between coastal fog and inland weather. They found the difference between the coastal temperature and the temperature about 50 miles inland was key. The temperature differential creates a vacuum that "pulls the fog on land, so the greater the difference between inland and coastal, the more power it has in drawing the fog on shore," Dawson said.

Using that relationship, they went back and looked at temperature information dating back to the early 1900s and extrapolated fog conditions over that period.

The temperature difference between inland and coast went down, mainly because the coast was heating up even faster than inland.That reduced the force to pull fog ashore. Warmer sea water has also caused less fog to form in the first place, Dawson said. As a result of these factors, the fog decreased by about 3.5 hours a day over the last century from 13.5 hours to about 10 hours

Next, the team examined how warmer, drier days affect the tallest trees in the world, the coast redwoods. They analyzed months of data on water exchange and water flow in the trunk of one redwood tree from the Grove of the Old Trees, a preserve in Occidental, CA.

On foggy days, the leaves lost less water to the air. Sap flow, another measure of water use, also dropped. The fog helped the trees lock in moisture during the drier summer months.

The sunnier, clearer summers will make the trees more vulnerable to drought. In other experiments where redwoods experience water shortages, "We see die back at the very tops of the biggest trees," Dawson said. "At the other end of the spectrum, you can also imagine that if the soil gets dryer and dryer because there's less and less fog, then the newest trees — the little seedlings that are germinating — they may not survive through the dry summer months."

The teamcan't say for sure whether human-caused climate change is a culprit in the disappearing fog, but "it seems likely that it may be the case," Dawson said. To link the drier coastal air to global climate change, the group would have to do an "analysis of fog everywhere around the world, and how it's changed everywhere around the world, to say okay, there's this general global pattern."

Some emerging evidence does suggest the vanishing fog may be more than a California phenomenon. Early studies show some of the formerly foggy coasts off of Chile and South Africa have become less so in recent years, Dawson said.

Image: sharloch/Flickr

Citation: "Climatic context and ecological implications of summer fog decline in the coast redwood region," James A. Johnstone, and Todd E. Dawson. 2010 PNAS.

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Saturday, 13 February 2010

Johnald's Fantastical Daily Link Splurge

Johnald's Fantastical Daily Link Splurge


Massive Star Blows Fancy Hourglass Nebula

Posted: 12 Feb 2010 03:45 PM PST

Sharpless 106

The beautiful hourglass-shaped nebula Sharpless 2-106 shines with brilliant colors in this new image from the Gemini North telescope.

sharpless-21435Giant star S106IR lies near the waist of the hourglass. Astronomers estimate the star could be up to 15 times more massive than our sun. The winds the star sends ripping through space appear to have generated the nebula's distinctive shape. Scientists believe that as material accretes in a disk around the hot star, perpendicular outflow jets send gas and dust streaming out at speeds of up to 125 miles per second.

The new data from Gemini North is considerably better than previous images, such as the one at the right.

The nebula is part of a catalog published by Stewart Sharpless in 1959. It's about 2 light-years long and half a light-year wide. It's located about 2,000 light years away in the direction of the Constellation Cygnus.

The image was captured using four narrow-band filters that have been tuned to see hydrogen as well as ionized helium, sulfur and oxygen. When combined in the top composite, helium is violent, sulfur blue, oxygen green and hydrogen red.

Images: 1. Gemini Observatory/AURA
2. Digitized Sky Survey/SuperCOSMOS

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WiSci 2.0: Alexis Madrigal's Twitter, Tumblr, and green tech history research site; Wired Science on Twitter and Facebook.

Searching for Network Laws in Slime

Posted: 12 Feb 2010 10:59 AM PST

dictyspiral

Of all science's model organisms, none isas weird as Dictyostelium discoideum, a single-celled amoeba better known as slime mold. When they run out of food, millions coalesce into a single, slug-like creature that wanders in search of nutrients, then forms a mushroom-like stalk, scatters as spores and starts the cycle again.

In the rules governing the behavior of these creatures, researchers hope to find analogues for baffling biological mysteries, from the specialization of cells to how animals become altruistic.

"What I look for is principles that work on different scales," said Princeton University biologist Ted Cox, who in an upcoming Nucleic Acids Research paper describes how cellular proteins find their DNA targets, a process he links to the slime mold's foraging patterns. "The theoretical underpinning is exactly the same."

Research on Dictyostelium took off in the 1950s, when work by Princeton biologist John Bonner led to the discovery of a chemical used by slime mold cells to signal, triggering their group-forming behavior. At the time, scientists assumed that a few specialized cells controlled the process. But a couple decades later, inspired by famed mathematician Alan Turing's work on how simple rules produced complex structures, researchers showed that slime complexity resulted from the linked interactions of its cells, not some centralized regulator.

physarum_uk
Physarum polycephalum, the other slime mold, is just a single cell containing multiple nuclei. It can swell to enormous sizes, covering an entire square foot, and it's full of surprises.

In a paper published Monday in the Proceedings of the National Academy of Sciences, researchers showed how Physarum is even better at maintaining a balanced diet than humans.

In January, researchers described how it found ultra-efficient routes between food arrayed like Japanese cities. (The same trick has also been performed with English roadways.)

Researchers have also found that Physarum possesses memory, and think its computational powers can be harnessed in biological computer form.

Said Toshiyuki Nagaki, the Hokkaido University scientist who ran Physarum around a model Tokyo, it's time "to reconsider our stupid opinion that single celled organisms are stupid."

Their research stirred an ongoing scientific fascination with emergent properties and complexities. Since then, however, Dictyostelium has been overshadowed by Physarum polycephalum, another amoeba that exhibits amazing networking properties and is also known as a slime mold, though it's no closer to the other slime mold than a horse is to a frog. (See sidebar.) To the chagrin of Dictyostelium researchers, the two creatures are sometimes confused with each other.

But though the spotlight has moved, Dictyostelium research continues. Most of it has shifted from big-picture work to fine-grained focus. Dictyostelium's genome was sequenced five years ago, and information about its genetic and molecular mechanisms has steadily accumulated. From the application of modern mathematical modeling techniques to these realms of node-by-now measurement, the rules of networks may finally emerge.

"Fifty or 60 years ago, ecology was a fantastic collection of facts about organisms. Then along came Robert Macarthur, who used very simple equations to suggest how all this diversity might have occurred," said Bonner, whose book The Social Amoebae was publishedin November. "That opened up a whole new way of thinking about the outside world. And I think that is going to happen with slime molds."

According to Cox, the same dynamics governing slime mold signaling likely explain how calcium levels are synchronized — or go haywire — during the beating of a heart, or during embryonic development. The same goes for fluxes of mood-regulating neurotransmitters.

"It's a unifying theory of excitable systems," said Cox, who also noted that vortex patterns mapped in aggregating Dictyostelium cells are replicated in the spread of pathogens. Indeed, the slime mold is a useful modelforstudying the transmission dynamics of many diseases, from cholera to tuberculosis.

Cox's upcoming paper is the latest in a series of papers on how gene-activating proteins move from one section of DNA to another. Such coordination can be visualized on a larger scale as a pinhead floating in a large room, and landing randomly on a pin. For all practical purposes, it should be impossible, but Cox sees a hint to an answer in how the slime mold "slug" searches for food.

"It's Einstein's diffusion equations, in three dimensions," he said.

Before the slug searches for food, it has to form. Those dynamics are the focus of Rice University evolutionary biologist Joan Strassman. As described most recently in an October Nature paper, Strassman's work shows how gene mutations that allow individual amoebae to cheat inevitably cause damage to other, essential cell systems.

Called "positive pleiotropy," it's a built-in system for ensuring altruistic cooperation, a phenomenon that fascinates biologists. "The microorganisms that help and hurt us are all talking to each other. There are social interactions going on in the bugs in our skin," said Strassman. "This can tell us things about how microbes interact."

For a "so-called simple organism," said North Carolina State University biologist Larry Blanton, "it's doing a lot of sophisticated things of relevance to higher organisms."

Images: 1) At left, the life cycle of Dictyostelium/Larry Blanton. At right, a spiraling pattern of chemical signaling/Marcus Hauser. 2) Physarum spreading across England, from Andy Adamatzky's "Road planning with slime mould: If Physarum built motorways it would route M6/M74 through Newcastle."

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Brandon Keim's Twitter stream and reportorial outtakes; Wired Science on Twitter. Brandon is currently working on a book about ecological tipping points.

Mud Volcano Was Man-Made, New Evidence Confirms

Posted: 11 Feb 2010 04:44 PM PST

INDONESIA MUD VOLCANO

A new analysis shows that a deadly mud volcano in Indonesia may not have been a natural disaster after all. The research lends weight to the controversial theory that the volcano wascaused by humans.

Villagers near Sidoarjo noticed a mud volcano beginning to erupt at 5 a.m. local time May 29, 2006. It was about 500 feet from a local gas-exploration well. Every day since then, the Lusi mud volcano has pumped out 100,000 tons of mud, or enough to fill 60 Olympic-size swimming pools. It has now covered an area of almost3 square miles to a depth of 65 feet. Thirty thousand people have been displaced, and scientific evidence is mounting that the company drilling the well caused the volcano.

"The disaster was caused by pulling the drill string and drill bit out of the hole while the hole was unstable," said Richard Davies, director of the Durham Energy Institute and co-author of a new paper in the journal Marine and Petroleum Geology, in a press release. "This triggered a very large 'kick' in the well, where there is a large influx of water and gas from surrounding rock formations that could not be controlled."

surabaya_ast_2008316-copy

Mud volcanoes can form in two different ways. New fractures in rock that caps mud deposits can open, allowing the mud to rise to the surface if it's under pressure.Or, an earthquake can liquefy mud that then travels through pre-existing cracks to the surface.

Davies argues that the "kick" fractured the rock in the area, opening up new pathways for pressurized mud to come flowing up to the surface. Davies' team'sresearch uncovered new evidence from a drilling log that the drilling company, Lapindo Brantas, pumped drilling mud down their well to try to stop the mud volcano.

"This was partially successful, and the eruption of the mud volcano slowed down," Davies said. "The fact that the eruption slowed provides the first conclusive evidence that the bore hole was connected to the volcano at the time of eruption."

The new paper came in response to a paper published by the company's lead driller in the same journal. Lapindo Brantas has long maintained that drilling did not cause the eruption. Instead, the company claims an earthquake that occurred two days before and about 175 miles away did the damage. Obviously, there are financial ramifications if the drilling company is found liable for the disaster.

The problem with the earthquake hypothesis is the stress changes caused by the quake would have been relatively small, too small to cause the volcano, said Davies' co-author, University of California at Berkeley geologist Michael Manga.

"There is 1,000 times not enough energy to cause the eruption," Manga said.

He was drawn into the controversy when the drilling company cited one of his paperson how earthquakes can cause mud volcanoes and have on 32 occasions. But Manga noted that based on all the historical examples that scientists have, what the company claimed happened was impossible.

"So I wrote a one-page paper [in 2007] saying it could not possibly have caused the mud volcano," he said.

Other scientists came to similar conclusions, although some doubts remained.

An even stronger piece of evidencethat the earthquake could not have created the mud volcano, Manga said, is that in the years before the quake, there were "bigger and closer earthquakes that did not cause an eruption."

In fact, the stress changes associated with the tides are larger than the stresses caused by the earthquake that happened to strike two days before the mud volcano eruption began.

Still, the editor of the journal in which both the company's paper and the Manga-Davies rebuttal was published said that it was possible that the same data could be subject to multiple interpretations.

"In geology, sometimes it's not about being right or wrong, it's about being reasonable or unreasonable," said editor Octavian Catuneanu, geologist at the University of Alberta. "The funny thing is that sometimes datasets can be interpreted by different people in different ways, and this leads to arguments and controversies."

Still, there is a large financial incentive for Lapindo Barantas' scientists to find that their company was not responsible. "The drilling company cannot say anything different, right?" Manga said.

But Catuneanu said that no matter who the scientists were working for, they still had to meet the scientific standards of the journal.

"I guess there would be some bias there, but as a journal editor, what I need to make sure is that the authors of an article stick to the science," he said. "If they want to have something publishable, they have to bring data and discuss it in a scientific manner."

Lapindo Barantas could not be reached for comment.

Images: 1. AP Photo/Trisnadi
2. NASA

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WiSci 2.0: Alexis Madrigal's Twitter, Tumblr, and green tech history research site; Wired Science on Twitter and Facebook.

Antibiotics Breed Superbugs Faster Than Expected

Posted: 11 Feb 2010 01:03 PM PST

antibiotics

A newly discovered mechanism of antibiotic resistance helps explain how bacteria have so quickly undermined medicine's front-line defenses, turning miracle drugs into duds in just a few decades.

Scientists have long known that exposing bacteria to the right antibiotics will kill most of them, but leave a few mutants that happen to resist the drug better than the rest. These mutants go on to multiply, and eventually the whole strain evolves resistance.

Now a new study paints a more complicated picture of antibiotic resistance. Bacteria don't just develop resistance to one drug at a time, but to many — and at accelerated rates. That's because antibiotics boost bacterial production of free-radical oxygen molecules that damage bacterial DNA. Repairs to the DNA cause widespread mutations, giving bacteria more chances to randomly acquire drug-resistant traits.

"You have a wide range of mutations being introduced across the genome. Some afford resistance to that antibiotic. Some afford resistance to other antibiotics," said James Collins, a Boston University biomedical engineer who described the mechanism in a paper publishedFeb. 11in Molecular Cell. "It would happen anyways, but this process is accelerating it."

Drug resistance is a serious public health concern. According to the federal Centers for Disease Control and Prevention, 70 percent of 1.7 million infections acquired in hospitals every year are resistant to at least one drug. Those infections annually kill 99,000 Americans — more than double the number that die in car crashes.

Drugs that once destroyed almost any bacteria now kill only a few, or don't work at all. In the case of some drugs, like Cipro, the decline is dramatic: Where in 1999 it worked against 95 percent of E. coli, it treated only 60 percent by 2006. Against lung infection-causing Acinobacter, its effectiveness fell by 70 percent in just four years.

Though drug resistance is ultimately inevitable, conventional wisdom holds that antibiotics consumed at suboptimum doses hasten the process. Bugs that would have succumbed to a larger dose live to multiply, pushing the strain as a whole closer to resistance. That happens when a prescription goes unfinished, or when antibiotics used on farms enter food and water at low levels.

The conventional wisdom isn't wrong, but the new findings suggest that drugs push bacteria towards resistance even more rapidly, and in more ways, than was thought.

"It's a really important paper. It underscores that we don't fully know how antibiotic resistance is engendered," said Harvard University molecular biologist Deborah Hung. "If you treat with low concentrations of antibiotic, the bugs respond by increasing their mutation rates."

In earlier research, Collins' team showed that antibiotics don't only kill bacteria as expected –by corroding cell walls, messing with DNA and blocking proteins — but by triggering the release of free-radical oxygen molecules. Thanks to an extra electron, the free radicalsbind easily and corrosively with other molecules, and prove as lethal as the drugs themselves.

For the latest study,the researchers testedwhether free radicals might also affect drug resistance by usingsublethal doses of five common antibiotics on Staphylococcus aureus, the annual cause of 500,000 infections in the United States, and two strains of E. coli, including one taken from a patient.

The free radicals caused DNA damage that didn't kill all the bacteria.The bacteria'sself-repair processes then introduced mutations to genes that provided resistance to many drugs, not just those being administered.

Drugs might be foundthat couldalter bacterial DNA repair systems, but that prospect is extremely speculative, said Collins.

Hung said more research is needed to show how different bacteria respond. Mutation rates might vary between strains. It's also possible that free-radical damage also accelerates horizontal gene transfer, in which bacteria swap genes without reproducing. If so, resistance could develop faster and spread more rapidly.

"The clinical significance is not clear yet, but it certainly should make us pause and think about the way we use antibiotics," said Hung.

In recent years, public health experts have recommended that doctors use antibiotics only when necessary, and that patients complete every prescription. They've also called for dramatic cuts in the agricultural use of antibiotics.

Of the 35 million pounds of antibiotics consumed annually in the United States, 80 percent goes to farm animals. Much of it is used to treat diseases spread by industrial husbandry practices, or simply to accelerate growth. As a result, farms have become giant petri dishes for superbugs, especially multidrug-resistant Staphylococcus aureus, or MRSA, which kills 20,000 Americans every year –more than AIDS.

Alarming cases of farm-based MRSA and other diseases led to a proposed Congressional law restricting the use of agricultural antibiotics. That bill, supported by the American Medical Association and American Public Health Association, is opposed by farm lobbyists and remains stuck in committee.

"We need to look carefully at situations where antibiotics are used in agriculture and water supplies," said Collins. "The benefits may not outweigh the potential harm we're doing by creating stronger, more problematic microbes."

Image: Samantha Celera/Flickr

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Citation: "Sublethal Antibiotic Treatment Leads to Multidrug Resistance via Radical-Induced Mutagenesis." By Michael A. Kohanski, Mark A. DePristo, and James J. Collins. Molecular Cell, Vol. 37 No. 3, February 11, 2009.

"The Fast Track to Multidrug Resistance." By Benjamin B. Kaufmann and Deborah T. Hung. Molecular Cell, Vol. 37 No. 3, February 11, 2009.

Brandon Keim's Twitter stream and reportorial outtakes; Wired Science on Twitter. Brandon is currently working on a book about ecological tipping points.

New 3-D Map of Interstellar Gas Around the Sun

Posted: 11 Feb 2010 11:11 AM PST

map

Space is a pretty empty place. But it's not completely empty, as a new map of the interstellar space in the 1,000 light-years around the sun shows.

Using the light from 1,857 stars, a team of French and American astronomers were able to measure the density of the gas surrounding our sun by examining fine differences in the starlight. They confirmed the presence of the Local Cavity, represented by the white area above, which scientists think was swept of gas by an old supernova explosion.

"Nobody knows for sure, but the consensus of opinion is that there was a giant supernova that went off about 5 or 10 million years ago, and the big explosion cleared everything out of the way and left a big hole in the interstellar medium," said astronomer Barry Welsh of the University of California at Berkeley.

The Local Cavity has a radius of about 260 light-years. The area is so empty that if you were to fly along scooping up the hydrogen atoms in the interstellar medium between our solar system and the edge of the cavity, you'd only have collected enough to fill half a coffee cup with them, Welsh said.

The Local Cavity is surrounded by a wall of relatively denser gas. But the wall isn't impenetrable. It'sriddled with "interstellar tunnels" that lead from one pocket of less dense gas to another.

The work builds on a 2003 map and was published in the journal Astronomy and Astrophysics. It incorporates more than twice the data of the previous map. By mapping this gas, Welsh said we were filling in major blanks in our knowledge about the galaxy.

He said that our previous maps of our local area just had the stars, but not the gas, which was like "a map of the USA that just has the cities."

Citation: "New 3D gas density maps of NaI and CaII interstellar absorption within 300 pc," by B. Y. Welsh, R. Lallement, J.-L. Vergely, and S. Raimond. Astronomy and Astrophysics, 2010, vol. 510, A54 (February 9, 2010).

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WiSci 2.0: Alexis Madrigal's Twitter, Tumblr, and green tech history research site; Wired Science on Twitter and Facebook.

Martian Dune Mystery Solved by Bouncing Sand Grains

Posted: 11 Feb 2010 12:15 AM PST

mars_barchans_cluster

Once Martian sand grains hop, they don't stop.

sciencenewsThat's the conclusion of a new study that finds sand can move on Mars without much windy encouragement.

Mars' sandy surface has clearly been shaped by wind. Its characteristic dunes and ripples are the kind formed by sand particles taking short wind-borne hops, a process called saltation.

But atmospheric simulations and landers' direct measurements of wind speed have found that the Martian wind hardly ever blows hard enough to kick sand grains off the ground in the first place.

The new paper, to appear in an upcoming Physical Review Letters, suggests a solution to this paradox: a kind of billiard-ball effect in which one sand particle knocks the next one into motion. "It's much easier to keep this process going than it is to start it in the first place," says study author Jasper Kok, an atmospheric physicist at the National Center for Atmospheric Research in Boulder, Colo., who did most of this research while at the University of Michigan in Ann Arbor. "It's like when you ride a bike: It costs a lot of exertion to get it going, but once you're going it's easier to keep going."

mars_barchans_verticalcropKok modified a numerical model, previously applied to geological processes on Earth, to include Martian gravity and atmospheric conditions. Unlike in other models, Kok simulated a process called splashing, in which a flying sand particle knocks at least one new grain into the air as it smacks into the ground.

"That's hard to study in a wind tunnel," notes planetary scientist Robert Sullivan of Cornell University. The study "goes numerically where we have a hard time going with wind tunnel experiments," he says.

The way sand grains knock each other around turns out to make all the difference, Kok says. Because Martian gravity and air density are so much lower than Earth's, a small kick from the wind sends sand particles on Mars flying much higher, up to a meter off the ground.

"It's like playing golf on the moon," Kok says. Particles get caught in stronger winds as they rise, causing them to pick up speed and ultimately slam into the ground, where they kick up more particles and start the cycle over. "This splashing process is really efficient," Kok says. "It can keep saltation, or sand blowing, going on Mars at relatively low wind speeds." These jumping sand grains can create ripples over time even without high sustained winds, he says.

The finding could help solve other puzzles in the Martian landscape. Earlier models predicted that crescent-shaped sand dunes called barchan dunes should grow to at least 500 meters long — but many are only 100 meters. And the Mars rover Opportunity has found sand ripples made up of particles only 100 micrometers in diameter, so small that scientists had expected them to stay aloft once kicked up. The new model could explain both riddles by showing that splashing can keep particles moving at low wind speeds. Slow-moving sand grains don't travel far and therefore make short dunes, but even tiny particles can get pushed into ripples, Kok says.

"This study is very welcome, very informative," Sullivan says. "The results go a long way toward explaining several mysteries."

mars_7b

Images: Martian dunes imaged by HiRISE 1) Barchan dunes. 2) Barchan dunes. 3) Megaripples. Credit: NASA/JPL/University of Arizona.

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Saturn’s Most Habitable Moon Offers Ice, Water, Killer Views

Posted: 10 Feb 2010 04:30 PM PST

<< previous image | next image >>

Enceladus has to be one of the most intriguing objects in the solar system. It's definitely our favorite of Saturn's 62 moons here at Wired Science, and it's among the most likely places to find the necessary ingredients for extraterrestrial life in the solar system.

Enceladus actively spews jets of material from its south pole, forming one of Saturn's majestic rings. New evidence from the jets suggesting that there is a liquid ocean beneath the moon's icy crust was published just this week in the journal Icarus.

Data from NASA's Cassini spacecraft, which dove through the jets in 2008, showed the plumes contain negatively charged ions, which have only been found on Earth, another Saturnian moon — Titan — and comets. On Earth, negatively charged ions are found where water is moving, such as in a waterfall or a crashing wave. The discovery of the ions in Enceladus' jets is the best evidence yet of liquid water.

On top of being a possible haven for life, Enceladus is beautiful. Its icy crust is riven with cracks and folds that somehow look both familiar and alien at the same time. Older surfaces have impact craters. The four huge, linear depressions at its south pole known as the tiger stripes are probably less than 1,000 years old and warmer than the rest of the crust, evidence that Enceladus is actively forming ice.

Though it is just over 300 miles in diameter, a tenth the size of Titan, tiny Enceladus has won us over. With Cassini's new life extension into 2017, and 11 more planned flybys of Enceladus, we can expect more awesome images and enlightening data.

Here we have collected some of the best images of Enceladus that Cassini has collected since it began exploring Saturn in 2004.

Image: NASA/JPL/CICLOPS

Early Galaxies Formed Stars Fast Because They Had More Gas

Posted: 10 Feb 2010 10:41 AM PST

starformationspitzer

The mystery of why galaxiesformed early in the history of the universe give birth to more stars than modern ones has been solved. An abundance of dense, cold gas fueled rapid star formation in these early galaxies, according to a new study.

Astronomers collected signals from 19 different 8- to 10-billion-year old galaxies scattered across the northern sky. These early-universe stellar nurseries had muchmore interstellar gas — dense, hydrogen-rich clouds at a chilly minus 441 to minus 414 degrees Fahrenheit — than their modern counterparts.

"This is really pioneering work," said astrophysicist Kai Noeske of the Harvard Smithsonian Center for Astrophysics."It unambiguously confirms that these galaxies really are more gas-rich, so the reason they made more stars back in the day is that they had more fuel to burn."

Scientists study distant galaxies because the light they sent out billions of years ago is only now reaching us, and can therefore tell us about conditions early in the universe's 13.7-billion-year history.

No one knew why stars form more than 10 to 100 times more often in distant, massive galaxies than they do in local galaxies of the same mass, said astronomer Linda Tacconi of theMax Planck Institute for Extraterrestrial Physics in Germany, lead author of the Feb. 10 Nature study.

Some scientists had guessed thatthese early galaxies contained more cold interstellar gas, which fueled the frenetic birth of stars. Others argued that these ancient galaxies had the same amount of gas as the Milky Way, but that suns formed in short, furious starbursts as these galaxies collided, Noeske said.

Determining which theory was right was difficult. The cold, dense gas clouds emit such faint, low-energy light that even the most sensitive instruments can barely detect them. Just a few years ago, Tacconi's team searched for signals from these galaxies, but failed, she said.

pdbi

Thegroup was finally able to answer the question byadding more-sensitive detectors to the IRAM Plateaude Bure Interferometer, an array of millimeter-wavelength radio telescopes located at 7,381 feet in the French Alps.

Ultimately, the team wanted to know how much hydrogen filled these early galaxies,becauseit is by far the most abundant element in the universe and in interstellar gas clouds. But hydrogen emissions from these distant objects are simply too hard to detect, Tacconi said.

Instead, they measured the light emitted from carbon monoxide molecules. As these molecules rotate, they shift from one energy state to another. As they shift, "they emit photons, and that radiation is what we see as an emission line at a specific wavelength," Tacconi said.

The amount of light emitted from these spinning molecules revealed the fraction of each galaxy made up of carbon monoxide. Carbon monoxide and hydrogen are found in almost the same ratio in many parts of the universe. So, they used this ratio to extrapolate the amount of hydrogen present in these early galaxies.

A 10-billion-year-old galaxy was made of about 44 percent cold interstellar gas by mass, while an 8-billion-year-old one was about 34 percent. This is three to 10 times more hydrogen than today's giant galaxies.

The study also showed the old galaxies drew in fuel from their surrounding environment in order to keep up the frantic pace of star formation, Noeske said.

Future researchshould look at a larger number of galaxies and find a way to measure smaller galaxies, said astronomer Dawn Erb of the University of California, Santa Barbara, who was not involved in the study.

"This is just the tail end of the population of the normal galaxies, just the biggest and most massive ones," she said. "We just can't see the normal ones, because they're too faint."

To do that, the team will need even-more-sensitive equipment, whichthey will get when the ALMA observatory in Chile comes online in 2012. "That's going to be the next big step,"Erb said.

Images:
1) Spitzer Telescope image of astar-formation region known as W5, in the Cassiopeia constellation 7,000 light-years away.NASA/JPL-Caltech/Harvard-Smithsonian
2) IRAM Bure Interferometer. IRAM/Rebus

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Citation:L. J. Tacconi, R. Genzel, R. Neri, P. Cox, M. C. Cooper, K. Shapiro, A. Bolatto, N. Bouché , F. Bournaud,A. Burkert, F. Combes, J. Comerford, M. Davis, N. M. Förster Schreiber, S. Garcia-Burillo, J. Gracia-Carpio, D. Lutz, T. Naab, A. Omont, A. Shapley, A. Sternberg, B. Weine. "High molecular gas fractions in normal massive star-forming galaxies in the young Universe" Nature Vol 463, 11 Feb. 2010.

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First Ancient-Human Genome Sequence Answers Anthropological Riddle

Posted: 10 Feb 2010 10:35 AM PST

inuk

Meet Inuk, a 4,000-year-old man known from a tuft of hair found in Greenland permafrost.

In those frozen strands, enough DNA was preserved to sequence the first ancient-human genome and confirm an unexpected ancient migration from Siberia to the New World, plus a few of Inuk's own traits.

Along with brown eyes, brown skin and facial hair, he had "a tendency to baldness," said Eske Willerslev, a Niels Bohr Institute evolutionary geneticist who led the analysis, published Monday in Nature. "But because we found quite a lot of hair from this guy, we presume that he died young."

The remains of Inuk — which translates to "person" or "human being" in the Inuit language family — were found in Qeqertasussuk, an archaeological site in southwest Greenland.

A few bone fragments and hair tufts found at the site are the only biological remnants of the Saqqaq, the earliest known inhabitants of the North American Arctic.

Controversy exists over the Saqqaq's origins. Some anthropologists think they were descended from temperate North Americans who wandered north, or from early ancestors of modern Inuit who left no archaeological trace.

But the analysis that revealed Inuk's eye color and impending baldness also returned genetic patterns most closely related to those now found in indigenous inhabitants of eastern Siberia. The Saqqaq appear to have originated there.

The findings support the implications of a mitochondrial DNA analysis of the hair published by Willerslev's team in Science in 2008. That study also showed patterns of Siberian origin, and a clear biological break between the Dorset culture (the next-oldest Paleo-Eskimo group) and the ancestors of modern Inuit people.

Whether the Saqqaq influenced their cultures is not known, said Willerslev.

Inuk's genome is the oldest yet reconstructed by scientists. It may be difficult to perform such decipherings on remains found in warmer climes, which degrade faster. But that remains to be tested.

"Such studies have the potential to reconstruct not only our genetic and geographical origins, but also what our ancestors looked like," wrote Griffith University molecular biologists David Lambert and Leon Huynen in an accompanying commentary in Nature.

Images
Left: Electron microscope image of the hair/
Nature
Right: Artist's rendering of Inuk/Nuka Godfredsen

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Citations
"Ancient human genome sequence of an extinct Palaeo-Eskimo." By Morten Rasmussen, Yingrui Li, Stinus Lindgreen, Jakob Skou Pedersen, Anders Albrechtsen, Ida Moltke, Mait Metspalu, Ene Metspalu, Toomas Kivisild, Ramneek Gupta, Marcelo Bertalan, Kasper Nielsen, M. Thomas P. Gilbert, Yong Wang, Maanasa Raghavan, Paula F. Campos, Hanne Munkholm Kamp, Andrew S. Wilson, Andrew Gledhill, Silvana Tridico, Michael Bunce, Eline D. Lorenzen, Jonas Binladen, Xiaosen Guo, Jing Zhao, Xiuqing Zhang, Hao Zhang, Zhuo Li, Minfeng Chen, Ludovic Orlando, Karsten Kristiansen, Mads Bak, Niels Tommerup, Christian Bendixen, Tracey L. Pierre, Bjarne Grønnow, Morten Meldgaard, Claus Andreasen, Sardana A. Fedorova, Ludmila P. Osipova, Thomas F. G. Higham, Christopher Bronk Ramsey, Thomas v. O. Hansen, Finn C. Nielsen, Michael H. Crawford, Søren Brunak, Thomas Sicheritz-Ponten, Richard Villems, Rasmus Nielsen, Anders Krogh, Jun Wang and Eske Willerslev.
Nature, Vol. 463 No. 7282, Feb. 11, 2010.

"Face of the past reconstructed." By David M. Lambert and Leon Huynen. Nature, Vol. 463 No. 7282, Feb. 11, 2010.

Brandon Keim's Twitter stream and reportorial outtakes; Wired Science on Twitter. Brandon is currently working on a book about ecological tipping points.

New Telescope Captures Dazzling Image of Orion Nebula

Posted: 10 Feb 2010 03:00 AM PST

eso1006a

You've undoubtedly seen the smudge of the Orion Nebula hanging just below his belt thousands of times, but the most beautiful image yet of the celestial body was just released Wednesday.

The European Southern Observatory's new VISTA telescope's enormous field of view allows it to image the entire nebula at once. It's been designed to capture near-infrared light. The longer wavelengths of light in that part of the spectrum allow rays to pass through dusty space without being scattering.

The Orion Nebula is located about 1,350 light-years from Earth. The cloud of gas and dust is a nursery for young stars. The red blobs in the features near the center of the image are young, growing stars that are hidden by dust in visible light.

VISTA was just placed into service late last year, so we can expect many more beautiful near-infrared images as it conducts its survey of the sky.

There are detailed close-up shots below, too.

eso1006b

Image: ESO/J. Emerson/VISTA. Acknowledgment: Cambridge Astronomical Survey Unit. The 341 MB XXXL version.

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Tuesday, 9 February 2010

Johnald's Fantastical Daily Link Splurge

Johnald's Fantastical Daily Link Splurge


Stunningly Preserved 165-Million-Year Old Spider Fossil Found

Posted: 08 Feb 2010 10:11 PM PST

spider1a

Scientists have unearthed an almost perfectly preserved spider fossil in China dating back to the middle Jurassic era, 165 million years ago. The fossilized spiders, Eoplectreurys gertschi, are older than the only two other specimens known by around 120 million years.

The level of detail preserved in the fossils is amazing, said paleontologist Paul Selden of the University of Kansas and lead author of the study appearing Feb. 6 in Naturwissenschaften. "You go in with a microscope, and bingo! It's fantastic."

spider4b

The fossils were found at a site called Daohugou in Northern China that is filled with fossilized salamanders, small primitive mammals, insects, and water crustaceans. During the Jurassic era, the fossil bed was part of a lake in a volcanic region, Selden said.

Spider fossils from this period are rare, because the arachnids' soft bodies don't preserve well. The pristine fossil pictured in these photos was probably created when the spider was trapped in volcanic ash. The ultra-fine clay particles squashed the spider without breaking up the animals' delicate cuticle as more coarse sediment would, Selden said.

E. gertschi shows all the features of the modern members of the family, found in North America, suggesting it has evolved very little since the Jurassic period, Selden said. "The scimitar-shaped structure you notice out of the male is so distinctive," he said. "Looking at modern ones, you think, well, it's just a dead ringer."

The findings also suggest this family of spiders, the Plectreuridae, was once much more widespread than it is today. Currently, the family has only been found living in California, Arizona, Mexico and Cuba. Yet 165 million years ago, they lived on a small continent called the North China Block.

"At some point something caused their range to contract to this part of southern North America," Selden said. He speculates that changes in vegetation during an ice age or other climactic event wiped them out in other areas, "but they were still happy in these arid areas of the Southwest."

spider4f

Images: Paul Selden

Citation: "The oldest haplogyne spider (Araneae: Plectreuridae), from the Middle Jurassic of China" Paul A. Selden and Diying Huang, Naturwissenschaften, 6 Feb. 2010.

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Audio: DIY Recordings of Awakening Sun

Posted: 08 Feb 2010 12:20 PM PST

latest_eit_284

As the sun emerges from a long lull in activity, the star's emissions in the radio band of the spectrum have also picked up. And from a shed on three acres of land outside Santa Fe, New Mexico, amateur radio astronomer Thomas Ashcroft is making recordings of them available for download.

"The Sun has become hyper-dynamic the past few days," Ashcroft wrote on his website Sunday, along with links to four "specimens" of radio bursts, as he calls them.

The sun is crackling with solar flares now as a very large sunspot continues to circle our star. The recent solar activity almost assuredly signals the end of the solar minimum. Only 5 percent of the days in 2010 have seen a blank sun. In 2008 and 2009, more than 70 percent of the days had no sunspot activity.

Here is what one long burst sounded like on Sunday.

Not all bursts sound the same, though. Another kind, Type V, is generally shorter and sharper. They happen to be Ashcroft's favorites.

"I like that one because they are very strong and very fast," Ashcroft told Wired.com. "They are only short lived, only a minute or two minutes. You can get a rush out of it. You can get high off of it. You can trip on it a little bit."

Ashcroft recorded a decently powerful Type V on Sunday.

ashcraft_antenna_snow

The wires running from the antennas on his property to his observatory are visible in the photo above.

The physics of solar radio emissions are quite complicated, but Ashcroft just likes to listen to the radio static out in the shed on his property. It gives him a feel for what the sun is doing, he said. He held up the phone to his speakers where the standard hiss of the radio, speckled by cosmic background radiation, constantly plays.

"I have that playing at a low level. I'm able to hear when there are sudden fluctuations," Ashcroft said. "That makes me hypersensitive to the sun. I consider my antennas, which are mostly dipole antennas, I consider them my hyperextended nervous systems, so I can feel subtle solar movements."

When he processes the recordings, Ashcroft likes to track one frequency (say, 21 megahertz) in one channel and another (say, 24 megahertz) in the other channel. It tends to give his specimens what he calls "spatiality" and a kind of pulsating effect. That's because he isn't just trying to record the sun, he's trying to make it into something with which people can connect.

"I sort of see it as a possible musical form of the future. You know? An energetic form," Ashcroft said. "Maybe the word isn't even art anymore, it's almost nutritional to the nervous system in a way that I don't know about, but I'm groping towards, kind of as an artist."

After almost 20 years of studying the sun, Ashcroft said his view of being a human has actually changed.

"I'm very conscious of myself as an organism, an electroreceptor sensing the sun," Ashcroft said. "It's human, but the human is a subset of being an organism."

Via Spaceweather.com

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WiSci 2.0: Alexis Madrigal's Twitter, Google Reader feed, and green tech history research site; Wired Science on Twitter and Facebook.

Saturday, 6 February 2010

Johnald's Fantastical Daily Link Splurge

Johnald's Fantastical Daily Link Splurge


Ultra-Precise Quantum-Logic Clock Puts Old Atomic Clock to Shame

Posted: 05 Feb 2010 03:13 PM PST

quantum_clock
Scientists have built a clock which is 100,000 times more precise than the existing international standard.

The quantum-logic clock, which detects the energy state of a single aluminum ion, keeps time to within a second every 3.7 billion years. The new timekeeper could one day improve GPS or detect the slowing of time predicted by Einstein's theory of general relativity.

"It could it be a real contender for the next frequency standard, or next timekeeper," said physicist Chin-wen (James) Chou of the National Institute of Standards and Technology in Boulder, lead author of a study to appear in a forthcoming Physical Review Letters.

Chou's team is one of several racing to build an atomic clock that can replace the current international standard, the cesium fountain clock. The cesium clock loses one second every 100 million years. Chou's is not the first quantum-logic clock, but his uses aluminum and magnesium ions, which makes it twice as precise as its predecessors that used aluminum and beryllium.

To keep time, quantum-logic clocks measure the vibration frequency of UV lasers. Unfortunately, the best lasers we can build veer off their normal frequency by about one tick every hour, Chou said. To keep the laser's timekeeping precise, its vibration must be anchored to something much more stable.

That anchor is the vibration of an electrically charged aluminum atom, which vibrates at 1.1 Petahertz, or 1.1 quadrillion times a second.

The first step in measuring the ion's vibration is to hit it with UV lasers, which are tuned to the charged atom's rate of vibration.The aluminum ion can be in either a low- or high-quantum energy state.

"If the laser frequency is right on the ion frequency, then the ion will change state, but if the laser frequency is off a little bit, then the ion doesn't change state as efficiently," Chou said. "This efficiency is a signal that tells us, this signal is off by so much, and we should steer the frequency so it stays on the frequency of the aluminum ion."

But they can't tune the laser frequency to the aluminum ion state unless they can actually detect that state. To do that, the group couples the aluminum ion to a magnesium ion. A separate set of laser beams shine on the pair. If the aluminum ion changes state, then both ions start to move.

Detecting that motion requires a third set of lasers to focus on the magnesium ion. If the magnesium ion is in motion, it emits a photon of light. Otherwise, it stays dark.

"That's the beauty of it, we can see just one ion emitting light," Chou said.

In a weird twist, the team can't actually tell how many times the clock ticks per second. That's because the definition of a second is currently based on the cesium fountain clock, which simply can't measure the precision of a more precise machine. It works using a similar principle as the aluminum clock, but uses the vibration of a cesium atom to anchor the frequency of a microwave source.

The clock could help resolve questions about the universal physical constants, such as the speed of light in a vacuum, or Planck's constant, an important value in quantum physics.

Physical constants are supposedly fixed over time, but some theories suggest they may vary slightly, he said. "Optical clocks are one of the candidates that might be able to see that really tiny variation over time," he said.

Global positioning devices also rely on extremely precise atomic clocks, so "if we have better and better clocks than we can tell our position, to a better and better precision," Chou said.

And the clocks could also show the effects of general relativity by detecting how much gravity warps time.

There's no plan to adopt the aluminum-ion clock as the formal international standard yet. To do so, the clock ticks need be transmitted around the world. That is normally done with optical cables, but those can only transmit such a stable frequency for around 60 miles, Chou said.

Image: Chou with the quantum clock, J. Burrus/NIST

Citation: C.-W. Chou, D.B. Hume, J.C.J. Koelemeij, D.J. Wineland, and T. Rosenband. C.-W. Chou, D.B. Hume, J.C.J. Koelemeij, D.J. Wineland, and T. Rosenband. 2010. Frequency Comparison of Two High-Accuracy Al+ Optical Clocks. Physical Review Letters.

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Electric Charge Can Change Freezing Point of Water

Posted: 05 Feb 2010 02:03 PM PST

ice_cubes

A watched pot never boils, but an electrically charged pot sometimes freezes.

sciencenewsA study in the Feb. 5 Science reports that water can freeze at different temperatures depending on whether the surface it rests on is positively or negatively charged. Under certain conditions, water can even freeze as it heats up.

"We are very, very surprised by this result," says study coauthor Igor Lubomirsky of the Weizmann Institute of Science in Rehovot, Israel. "It means that by controlling surface charge, either positive or negative, you can either suppress ice formation or enhance ice formation."

Water usually begins freezing by forming an ice crystal around a particle of dust or some other impurity. Without that starting point, water can stay liquid well below its freezing point, down to about -42º Celsius. This supercooled water is useful in nature and in the lab, from frogs and fish surviving long winters to cryogenic preservation of blood and tissues.

Scientists have suspected for decades that electric fields could be used to trigger freezing in supercooled water. A molecule of water has a slight positive charge on one end and a negative charge on the other, so electric fields could snap water molecules into a rigid formation by aligning them according to charge.

But previous experiments to understand whether electric fields can influence freezing were complicated by the materials used. The best materials for holding electric charge are metals, but as anyone who has tried to open a car door after a snowstorm knows, ice forms easily on metals even without a charge.

"If you try to do it with metal, you don't know what is from the electric field and what is from the metal itself," Lubomirsky says. "We wanted to know whether it is the charge that does it, or something special in metal."

Instead of metal, Lubomirsky and his colleagues used a pyroelectric material, which can form a short-lived electric field when heated or cooled. The researchers used four pyroelectric crystals, each of which was placed inside a copper cylinder. The bottom surfaces of two crystals were coated with chromium to conduct an electric charge, and the other two were coated with an aluminum oxide to keep the surface uncharged.

The researchers placed the experimental setup in a humid room and turned down the thermostat until water droplets formed on each crystal, then cooled the room further until the water froze.

With no charge on the surface, the water froze at -12.5º C, on average. But on the positively charged surface, water froze at a relatively balmy -7º. And on a negatively charged surface, ice formed, on average, at a chilly -18º.

"It's really dramatic, the strong effect of the charge," says physicist Gene Stanley of Boston University. He also says that the simplicity of the experiment means that "it's the kind of thing that is almost surely correct."

Lubomirsky and colleagues also managed to freeze water by heating it. Water droplets stayed liquid at -11º for up to 10 minutes on a negatively charged surface. But after the negative charge dissipated, heating the room to -8º was enough to induce a positive charge in the pyroelectric crystal and freeze the water.

"That's a very intriguing behavior," comments atmospheric physicist Will Cantrell of Michigan Technological University in Houghton. "In this case, on this particular substance, if you warm it up, you can get it to freeze."

Coauthor Meir Lahav, also of the Weizmann Institute, says water's response to charge probably depends on how the water molecules line up against the surface they're freezing to, though more work is needed to figure out exactly what is happening.

"The water molecules should be aligned differently, so I anticipated that this difference should affect the freezing temperature of ice," Lahav says. "But I didn't expect such a large difference. I'm very much delighted to see that."

Although he has no specific plans to harness the effect for applications such as cryogenic freezing or cloud seeding, Lahav says his team has already filed a patent.

Ice nucleation, "is a very fundamental problem," he says. "The moment you understand better — have a new understanding of a new effect — the applications always come afterwards."

Image: stevendepolo/Flickr

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