Saturday, February 23, 2013

Monster goldfish found in Lake Tahoe probably dumped from aquarium

Monster goldfish found: A?nearly 18-inch, 4.2-pound goldfish discovered in the depths of Lake Tahoe is not a native species, say scientists.

By Tanya Lewis,?LiveScience / February 21, 2013

Gigantic goldfish, like this one held by University of Nevada, Reno, researcher Christine Ngai, have been found in the waters of Lake Tahoe.

Heather Segale

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A new kind of lake monster has been found, in the depths of Lake Tahoe: gigantic goldfish. Researchers trawling the lake for invasive fish species scooped up a goldfish that was nearly 1.5 feet long and 4.2 pounds.

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"During these surveys, we've found a nice corner where there's about 15 other goldfish," environmental scientist Sudeep Chandra of the University of Nevada, Reno, told LiveScience. "It's an indication that they were schooling and spawning." The arrival of the fish, which were probably dumped there by aquarium owners, has Chandra worried ? goldfish are aninvasive species?that could interfere with Lake Tahoe's ecosystem.

It's unclear whether the giant fish were introduced as fully grown adults, or while they were still small, Chandra said. But even a small creature can have a big impact, if there are enough of them.

The goldfish are just one of several species of invasive warm-water fishes in?Lake Tahoe. "The invasion is resulting in the consumption of native species," Chandra said. What's more, the invasive fish excrete nutrients that cause algal blooms, which threaten to muddy Tahoe's clear waters. [Photos: Giant Goldfish & Other Freaky Fish]

Fish out of water

Aquarium dumping has become a common practice in the United States and elsewhere, and it's taking a toll on native wildlife. A recent reporton?California's aquarium trade?found that fish owners and importers are introducing hardy, nonnative aquatic species to California waters. "Globally, the aquarium trade has contributed a third of the?world's worst aquatic and invasive species," Williams, who was lead author of the report, told OurAmazingPlanet, a sister site of LiveScience, in January.

While the exact number of aquarium owners dumping fish is unknown, scientists know the practice is occurring because these species could not have ended up in these waters naturally. Between 20 percent and 69 percent of fish keepers surveyed in Texas admitted to dumping, according to Williams.

Other ways that invasive species find their way into natural ecosystems include aquaculture, live seafood, live bait, and fishing and recreation vessels. More than 11 million nonnative marine organisms representing at least 102 species arrive at ports in San Francisco and Los Angeles alone, Williams has found.

The invaders include tropical fish, seaweed and snails. One of the nastiest is a deadly type of seaweed known asCaulerpa. A type of?algae that produces toxic compounds?that kill off fish,?Caulerpa?was eradicated in 2000 (at great expense) from lagoons in Southern California.

Aquarium owners should be more careful when disposing of unwanted fish and other animals, Williams cautioned. "It's pretty simple: Don't dump your fish," she said. Instead, she suggests calling the pet shop that sold the fish or your state department of fish and wildlife. (Euthanasia is another option, but simply flushing fish down the toilet can be problematic ? for the fish and for your plumbing.)

So why do people dump fish? Studies of dumping have shown that size and aggressiveness of the fish are two main factors, Williams said.

The?largest pet goldfish, according to the BBC, was a fish named Goldie that was 15 inches (38 cm) long and weighed more than 2 pounds (0.9 kg).

Follow LiveScience on Twitter?@livescience. We're also on?Facebook?&?Google+.?

Copyright 2013?LiveScience, a TechMediaNetwork company. All rights reserved. This material may not be published, broadcast, rewritten or redistributed.

Source: http://rss.csmonitor.com/~r/feeds/science/~3/x-LZ3iaRnqQ/Monster-goldfish-found-in-Lake-Tahoe-probably-dumped-from-aquarium

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Scientists re-create dying star magnetic fields

NASA

White dwarf stars, imaged by the Wide Field and Planetary Camera 2 on NASA's Hubble Space Telescope.

By Charles Q. Choi
Space.com

The way matter behaves in the extremely powerful magnetic fields of dying stars known as white dwarfs has now been mimicked in labs on Earth, researchers say.

The advance came via devices made from silicon laced with phosphorus, which is very similar to nearly all computer microchips, "so in some ways we are carrying 'round the secrets of dying starseveryday in phones and computers," study author Ellis Bowyer, a condensed-matter physicist at the University of Surrey in England, told Space.com.

The sun, along with more than 90 percent of all stars in the galaxy, will one day end up as a white dwarf, which is made up of a dim, fading star core. These cooling, dying stars are as common as sunlike stars, and while they are only about the same volume as Earth, they typically pack in about 40 to 90 percent of the mass of the sun.

White dwarfs possess powerful magnetic fields far stronger than any on Earth. For instance, the strength of the magnetic field at Earth's surface is only 30 to 60 millionths of a tesla, while the strength of a white dwarf's magnetic field can reach 100,000 tesla.

"To put this in context, if a fridge magnet with this field was placed in the middle of a city like New York or London, everyone with a pacemaker would have to leave the city to avoid being affected," Bowyer said. "Fields around 1,000 tesla can be produced in a lab, but these last for fractions of a second and result in the destruction of the equipment."

New compounds
Understanding the behavior of atoms under high magnetic fields has spurred intense scientific interest. For instance, recent studies revealed that in such high fields, new compounds not observed anywhere else are predicted to exist, such as molecules made of two helium atoms each. [How?Magnetic Fields?Shape Black Holes (Gallery)]

However, there is much dispute about how atoms in such powerful fields behave. Existing theories regarding these fields cannot be tested directly using any magnetic fields scientists can generate on Earth.

To learn more about white dwarfs and their incredible magnetic fields, researchers sought to simulate the dying stars in the lab using samples of silicon laced with phosphorus impurities. The atomic properties of phosphorus mimic those of the atomic hydrogen making up the dying stars in certain ways.

"We originally started planning these experiments for completely different reasons," Bowyer said. "The majority of us are working on using atoms like phosphorus to form the basis for a quantum computer, a highly anticipated technology that relies on the quantum nature of matter to produce much faster computing power."

"We wanted to know how these atoms were affected by magnetic fields in order to find a way of manipulating arrays of these atoms efficiently, when we noticed that at relatively easily obtainable magnetic fields, the electrons in the atoms we were studying would start to behave in totally different ways to usual ? they would be dominated by the magnetic field rather than the nucleus they orbit," Bowyer added.

Cosmic connection
Lead study author Ben Murdin at the University of Surrey has a background in astrophysics, and pointed out "that this was exactly the same as what happens in white dwarf stars," Bowyer said.

The scientists compared the light emitted from phosphorus atoms under magnetic fields in the laboratory with that seen from the hydrogen atoms in white dwarf stars. They found phosphorus atoms in magnetic fields of tens of tesla behaved much like hydrogen atoms in fields of tens of thousands of tesla.

"By applying a 30-tesla field available at several labs around the world, the same physics as in a white dwarf?can be reproduced," Bowyer said. "We have managed to re-create some of the most extreme conditions in our galaxy."

Future studies can analyze how other materials might behave in white dwarfs, such as helium, which could be mimicked with sulfur or selenium. Such work could lead to discoveries of new kinds of magnetic chemical bonds, the researchers say.

The scientists detailed their findings online Feb. 12 in the journal Nature Communications.

Follow Space.com on Twitter?@Spacedotcom. We're also on Facebook?and?Google+.

Copyright 2013 SPACE.com, a TechMediaNetwork company. All rights reserved. This material may not be published, broadcast, rewritten or redistributed.

Source: http://science.nbcnews.com/_news/2013/02/21/17046711-scientists-watch-magnetic-fields-of-dying-stars-right-in-the-lab?lite

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Friday, February 22, 2013

Sony details PlayStation 4 specs: 8-core AMD 'Jaguar' CPU, 6X Blu-ray

Sony details PlayStation 4 specs 8core AMD 'Jaguar' CPU, 8X Bluray,

So we didn't see the actual PlayStation 4 console on stage at Sony's press event tonight, but that doesn't mean we can't know what's inside it. A press release reveals that the PS4's PC-like configuration will include an 8-core 64-bit x86 "Jaguar" CPU built by AMD, with a Radeon GPU comprised of 18 "compute units" capable of cranking out 1.84 TFLOPS to process graphics and more. Its Blu-ray drive -- yes, it will still have one of those -- spins at a brisk 6X (8X for DVDs) and as mentioned on stage, it packs 8GB of unified GDDR5 RAM capable of 176GB/sec of bandwidth. 802.11n WiFi, USB 3.0, Bluetooth 2.1, HDMI, optical out and even a legacy analog AV out make up the inputs and outputs, although the potential amounts of storage are still unspecified.

Also mentioned are the new software features, which include long-awaited additions like cross-game chat, and PSN Sony Entertainment Network accounts can now connect to Facebook. Other details we've already heard plenty about, like its instant-on "suspend mode", preloading of content, cloud gaming and shared game experiences. There are still many unknowns about Sony's next game console, get filled in on the facts as they are after the break.

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Source: http://feeds.engadget.com/~r/weblogsinc/engadget/~3/BF5N9bhjIsA/

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The After Math: A PlayStation 4 special

The After Math A PlayStation 4 special

The big story of the week, no, month, is Sony's next-generation console, the PlayStation 4. Well, the company didn't show us the physical box itself and instead chose to detail a new DualShock controller, some not-hugely-specific hardware outlines and titles we can expect to see (in some form) on the fourth generation PlayStation. As Pythagoras said: "Number rules the universe," and the After Math prefers it that way. Find some of those numbers after the break.

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Source: http://www.engadget.com/2013/02/22/the-after-math-playstation-4-special/

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Searching for the solar system's chemical recipe

Feb. 20, 2013 ? By studying the origins of different isotope ratios among the elements that make up today's smorgasbord of planets, moons, comets, asteroids, and interplanetary ice and dust, Mark Thiemens and his colleagues hope to learn how our solar system evolved. Thiemens, Dean of the Division of Physical Sciences at the University of California, San Diego, has worked on this problem for over three decades.

In recent years his team has found the Chemical Dynamics Beamline of the Advanced Light Source (ALS) at the U.S. Department of Energy's Lawrence Berkeley National Laboratory (Berkeley Lab) to be an invaluable tool for examining how photochemistry determines the basic ingredients in the solar system recipe.

"Mark and his colleagues Subrata Chakraborty and Teresa Jackson wanted to know if photochemistry could explain some of the differences in isotope ratios between Earth and what's found in meteorites and interplanetary dust particles," says Musahid (Musa) Ahmed of Berkeley Lab's Chemical Sciences Division, a scientist at the Chemical Dynamics Beamline who works with the UC San Diego team. "They needed a source of ultraviolet light powerful enough to dissociate gas molecules like carbon monoxide, hydrogen sulfide, and nitrogen. That's us: our beamline basically provides information about gas-phase photodynamics."

Beamline 9.0.2, the Chemical Dynamics Beamline, generates intense beams of VUV -- vacuum ultraviolet light in the 40 to 165-nanometer wavelength range (a nanometer is a billionth of a meter)- which can be precisely tuned to mimic radiation from the protosun when the solar system was forming.

Oxygen and sulfur are the third and tenth most abundant elements in the solar system and two of the most important for life. Their isotopic differences from Earth's are clearly seen in many different kinds of meteorites. Thiemens's team first used beamline 9.0.2 in 2008 to test a theory, called "self-shielding," about why oxygen-16 is less prevalent in these relics of the primitive solar system than it is in the sun, which contains 99.8 percent of all the mass in the solar system. To their surprise, the experimental results showed that self-shielding could not resolve the oxygen-isotope puzzle.

More recently Thiemens's group used beamline 9.0.2 to perform the first VUV experiments on sulfur, using the results to build a model of chemical evolution in the primitive solar nebula that could yield the isotopic ratios of sulfur seen in meteorites. They report their findings in Proceedings of the National Academy of Sciences.

Mass versus chemistry

Oxygen is the most abundant element on Earth, present in air, water, and rocks; 99.762 percent of it is the isotope oxygen-16, with eight protons and eight neutrons. Oxygen-18 has two additional neutrons and accounts for another two-tenths of a percent; oxygen-17, with one extra neutron, provides the last smidgen, less than four-hundredths of a percent.

Sulfur, with four stable isotopes, is less abundant but essential to life. Sulfur-32 accounts for 95.02 percent, sulfur?34 4.21 percent, sulfur-33 0.75 percent, and sulfur-36's mere 0.02 percent brings up the rear.

Ahmed explains the two basic kinds of processes that account for these ratios. "One depends on the mass of the isotopes themselves," he says. "Oxygen-18 is two neutrons heavier than oxygen-16. One effect of this, although not the only one, is that when the temperature rises, oxygen-16 evaporates faster. And when the temperature falls, oxygen-18 condenses faster."

Changes in temperature and other physical factors can thus produce different isotope ratios -- that's why there's a greater proportion of oxygen-18 in raindrops than in the clouds they fall from, for example.

Isotope-ratio researchers commonly graph these processes by plotting samples with increasing proportions of oxygen-18 relative to oxygen-16 along the Y axis; the X axis shows increasing proportions of oxygen-17 to oxygen-16. When comparing these three isotopes in almost any sample from Earth to an arbitrary standard called SMOW (standard mean ocean water), the proportions of the three always diverge at a rate that can be plotted along a line with a distinctive slope: about one-half.

Samples whose isotope ratios don't fall on the slope-one-half line didn't result from mass-dependent processes. In 1973 the ratios of oxygen isotopes in carbonaceous meteorites, the oldest objects in the solar system, were found to vary significantly from those on Earth. Their graph line had a slope close to one. A decade later Thiemens and John Heidenreich found that ozone, the three-atom molecule of oxygen, showed a similar isotope trend, with a similar slope of one -- a relationship that was at least partly due to the molecule's chemical formation.

Sulfur isotope ratios are plotted in a similar way; the standard is an iron sulfide mineral called Diablo Canyon Troilite -- not native to Earth, however, but found in a fragment of the meteorite that created Arizona's Meteor Crater.

"Mass-independent processes suggest chemical reactions, whether in the lab, the stratosphere, or the early solar system," says Ahmed. "In the proto-solar system, bathed in intense ultraviolet light, these might have occurred on a grain of rock or ice or dust, or in just plain gas. The goal is to identify distinctive isotopic fractionations and examine the chemical pathways that could have produced them."

In the beginning

Since Thiemens's early work with ozone 30 years ago, his UC San Diego laboratory has perfected methods of recovering primordial samples from dust, meteorites, and the solar wind. Thiemens and Chakraborty were members of the science team for NASA's Genesis mission, and Chakraborty was able to extract mere billionths of a gram of oxygen from particles of the solar wind even after the spacecraft's collectors were badly damaged when they crashed upon return to Earth.

Like oxygen, sulfur isotopes show up in different fractions in different solar system sources. Tracing their possible origins, the recent study of sulfur isotopes at beamline 9.0.2 began by flowing hydrogen sulfide gas -- the most abundant sulfur-bearing gas in the early solar system -- into a pressurized reaction chamber, where the synchrotron beam decomposed the gas and deposited elemental sulfur on "jackets" made of ultraclean aluminum foil.

The experiment was performed at four different VUV wavelengths, and the carefully stored aluminum jackets were taken to the Thiemens lab in San Diego, where Chakraborty and Jackson chemically extracted the sulfur and then measured its isotopes using Isotope Ratio Mass Spectrometry. In all samples the isotope compositions were found to be mass independent.

One source of fractionation in nature was photodissociation of hydrogen sulfide as the gas condensed to iron sulfide in the inner solar system, driven by intense 121.6-nanometer-wavelength ultraviolet light as the young star repeatedly shook with violent flares and upheavals. Different classes of meteorites -- and different parts of the same meteorites, such as their crust or various inclusions -- subsequently evolved different isotope ratios, depending on where and when in the solar system they formed. Sulfur compositions evolved independently from the way oxygen isotope compositions evolved.

The most recent target of research by the Thiemens group at beamline 9.0.2 is nitrogen, the seventh most abundant element in the solar system. On Earth, 99.63 of nitrogen is nitrogen-14, and nitrogen-15 is the remaining 0.37 percent. Measurements of the solar wind, carbonaceous meteorites, and other sources show wide swings in their proportions. The work is ongoing.

Says Musa Ahmed, "Tracking down how isotopic ratios may have evolved, we basically send these elements back in time. The more we learn about the fundamental elements of the solar system at the Chemical Dynamics Beamline, the more it's like really being out there when the solar system began."

This work was funded by NASA's Origins and Cosmochemistry programs. The Advanced Light Source is supported by DOE's Office of Science.

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The above story is reprinted from materials provided by DOE/Lawrence Berkeley National Laboratory.

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Journal References:

  1. S. Chakraborty, T. L. Jackson, M. Ahmed, M. H. Thiemens. Sulfur isotopic fractionation in vacuum UV photodissociation of hydrogen sulfide and its potential relevance to meteorite analysis. Proceedings of the National Academy of Sciences, 2013; DOI: 10.1073/pnas.1213150110
  2. Mark H. Thiemens, Subrata Chakraborty, Gerardo Dominguez. The Physical Chemistry of Mass-Independent Isotope Effects and Their Observation in Nature. Annual Review of Physical Chemistry, 2012; 63 (1): 155 DOI: 10.1146/annurev-physchem-032511-143657

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Disclaimer: Views expressed in this article do not necessarily reflect those of ScienceDaily or its staff.

Source: http://www.sciencedaily.com/releases/2013/02/130220123423.htm

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California a Case Study for Raising Income Taxes on Wealthy

What happens to the economy here over the next year will be a case study for policymakers in Washington, who are paralyzed by similar questions of taxation and growth. The early indications, in California, point toward an outcome you might not expect.

Source: http://www.governing.com/news/state/California-a-Case-Study-for-Raising-Income-Taxes-on-Wealthy.html

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