2013-05-24

Research gap threatens innovation, experts warn

Research gap threatens innovation, experts warn

MOUNTAIN VIEW, Calif. – The innovation pipeline could run dry from a lack of federal funding in basic research and the decline of big corporate R&D labs, said a panel of experts at an event celebrating the 40th anniversary of Ethernet.

They lamented the loss of AT&T Bell Labs that gave birth to the transistor and the decline of Xerox PARC, the birthplace of Ethernet. By contrast many of today’s largest tech companies, such as Apple—accused by Congress this week for failing to pay taxes on billions in revenue—conduct virtually no basic research, they said.

“When I was at Xerox people were not preoccupied with raising millions in VC funds-- we had free reign to make breakthroughs come true,” said Yogen Dalal, a managing director at the Mayfield Fund who wrote a seminal paper on Ethernet in its early days. “You have to have breakthroughs, but today who will fund them,” he asked.

“The thing that concerns me the most is we have lost the lead in big industrial research—we would never have had the transistor without Bell Labs,” said Bill Spencer, former head of PARC and Sematech. “The U.S. still has the best university system in world, and it’s still the best place to bring new things to market, but the middle missing,” he said.


Bill Spencer led PARC in the early days of Ethernet.


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SOI wafer supplier sees cash halved

SOI wafer supplier sees cash halved


LONDON – French semiconductor materials supplier Soitec SA, has reported a net loss of 209.5 million euro (about $270 million) on consolidated sales of 262.9 million euro (about $340 million), in its audited financial results for the year to March 31, 2013.

Soitec (Bernin, France) is the primary supplier of semiconductor-on-insulator (SOI) wafers for use in the fully-depleted SOI (FDSOI) manufacturing process that is being pioneered by STMicroelectronics NV (Geneva, Switzerland) at theCrolles wafer fab near Grenoble, France.

Soitec's net loss for 2012-2013 was 79.7 percent of sales and nearly four times larger than the net loss in the previous financial year. At the same time the consolidated sales declined by 18.7 percent compared with the previous year, which Soitec ascribed to declines in PC and related sales. Soitec reported cash resources of 130.1 million euro (about $168 million) at the end of March 2013 compared with cash resources of 259.8 million euro (about $336 million) at the end of March 2012.

The net loss included financial expenses and non-cash impairment charges, nonetheless the operating loss for the year was 123.0 million euro (about $160 million) compared with 45.9 million euro (about $60 million) in the previous year. Soitec said this was due to a significant decrease in demand for 300-mm diameter wafers, low asset utilization and continued investments in R&D.

Operating cash flow for the full year was negative 38.7 million euro (about $50 million) although was reduced to negative 1.3 million euro (about $1.7 million) in the second half of the financial year, Soitec reported.

When Soitec announced its unaudited results for the financial year in April 2013 the company indicated the outlook for sales in the coming financial year would remain soft. This is mainly due to cannibalization of PC-related markets by smartphones and tablet computers.


Related links and articles:

www.soitec.com

News articles:


Europe launches $12 billion chip support campaign

Europe backs FDSOI fabs

Intel moves forward with European 450-mm project

Soitec boosts production of silicon-on-sapphire wafers


MEMC introduces SOI wafers for FinFET over oxide


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4月西安金银珠宝销售达4.88亿

4月西安金银珠宝销售达4.88亿

  本报讯 (记者 宋洁) 黄金成为西安4月份消费市场最大的亮点.记者昨日从统计部门获悉,今年以来,西安市消费市场总体销售增速略有回升,其中金银珠宝类商品销售额达4.88亿元,创历史新高,同比增长42.4%.

  昨日,市民刘先生站在子午路一家商场的黄金柜台前,犹豫了许久要不要出手买金饰.“比起一年前,黄金饰品每克足足下降了50多元.”让刘先生纠结的是,“金价究竟到没到底呢?”

  今年4月以来,国际金价出现大幅跳水,引爆西安市民对于实物黄金的热情,金银珠宝类商品销售抢眼.

  据统计,4月当月,陕西金银珠宝类商品实现零售额6.26亿元,增长43.8%;西安4月份金银珠宝类商品销售额达4.88亿元,创历史新高,同比增长42.4%,高于3月31.9个百分点,成为西安消费市场的最大亮点.

  尽管刺激消费政策退出,但西安汽车消费刚性需求没有变.4月是传统的车市旺季,据统计,前4月,陕西汽车类商品实现零售额201.67亿元,增长9.8%,增速同比提高5.8个百分点.

  与此同时,今年我市住宿餐饮企业营业额下滑明显.据统计,前4月,陕西限额以上企业实现餐饮收入49.5亿元,下降8%,增速同比回落22个百分点,降幅进一步拉大.在西安,前4月,限额以上住餐企业实现营业额38.14亿元,同比下降8.1%.住宿企业客房入住率也仅为40%左右.

  今年以来,陕西限额以上企业实现消费品零售额882.67亿元,增长17.0%.同时,西安市前4月限额以上企业实现消费品零售额547.18亿元,同比增长17.1%,较上年同期提高1.8个百分点,较前3月提高0.7个百分点,消费市场总体销售增速略有回升.

  相关新闻

  4月CPI 陕西居全国第7

  本报讯 (记者 宋洁) 今年4月,陕西CPI同比上涨3.0%,比全国平均水平高出0.6个百分点.记者昨日获悉,4月份全国31省区中,青海CPI同比上涨4.9%居首,陕西涨幅位居31省区中上游,居第7位,继今年2月之后,第二次迈进“3”时代.

  陕西4月CPI同比上涨3.0%,排名31省区第七名,这主要是受食品、衣着、居住类价格上涨拉动,较上月提高0.7个百分点.其中,食品类价格同比上涨4.5%,拉动价格总水平上涨1.5个百分点,成为价格总水平上涨的主要因素.

  此外,前4个月,陕西CPI累计上涨2.9%,较去年同期涨幅回落1.2个百分点.

  (原标题:4月西安金银珠宝销售达4.88亿)





来源:新浪收藏


TAG:4月西安金银珠宝销售达4 88亿 翡翠 翡翠手镯 中国翡翠网 翡翠新闻

White tiger mystery solved: Coat color produced by single change in pigment gene

White tiger mystery solved: Coat color produced by single change in pigment gene

"The white tiger represents part of the natural genetic diversity of the tiger that is worth conserving, but is now seen only in captivity," says Shu-Jin Luo of China's Peking University.

Luo, Xiao Xu, Ruiqiang Li, and their colleagues advocate a proper captive management program to maintain a healthy Bengal tiger population including both white and orange tigers. They say it might even be worth considering the reintroduction of white tigers into their wild habitat.

The researchers mapped the genomes of a family of 16 tigers living in Chimelong Safari Park, including both white and orange individuals. They then sequenced the whole genomes of each of the three parents in the family.

Those genetic analyses led them to a pigment gene, called SLC45A2, which had already been associated with light coloration in modern Europeans and in other animals, including horses, chickens, and fish. The variant found in the white tiger primarily inhibits the synthesis of red and yellow pigments but has little to no effect on black, which explains why white tigers still show characteristic dark stripes.

Historical records of white tigers on the Indian subcontinent date back to the 1500s, Luo notes, but the last known free-ranging white tiger was shot in 1958. That many white tigers were hunted as mature adults suggests that they were fit to live in the wild. It's worth considering that tigers' chief prey species, such as deer, are likely colorblind.

Captive white tigers sometimes do show abnormalities, such as crossed eyes, but Luo says any frailties are likely the responsibility of humans, who have inbred the rare tigers in captivity. With the causal gene identified, the researchers ultimately hope to explore the evolutionary forces that have maintained tigers in both orange and white varieties.


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Gold nanocrystal vibration captured on billion-frames-per-second film

Gold nanocrystal vibration captured on billion-frames-per-second film

May 23, 2013 — A billon-frames-per-second film has captured the vibrations of gold nanocrystals in stunning detail for the first time.






The film, which was made using 3D imaging pioneered at the London Centre for Nanotechnology (LCN) at UCL, reveals important information about the composition of gold. The findings are published in the journal Science.

Jesse Clark, from the LCN and lead author of the paper said: "Just as the sound quality of a musical instrument can provide great detail about its construction, so too can the vibrations seen in materials provide important information about their composition and functions."

"It is absolutely amazing that we are able to capture snapshots of these nanoscale motions and create movies of these processes. This information is crucial to understanding the response of materials after perturbation. "

Scientists found that the vibrations were unusual because they start off at exactly the same moment everywhere inside the crystal. It was previously expected that the effects of the excitation would travel across the gold nanocrystal at the speed of sound, but they were found to be much faster, i.e., supersonic.

The new images support theoretical models for light interaction with metals, where energy is first transferred to electrons, which are able to short-circuit the much slower motion of the atoms.

The team carried out the experiments at the SLAC National Accelerator Laboratory using a revolutionary X-ray laser called the "Linac Coherent Light Source." The pulses of X-rays are extremely short (measured in femtoseconds, or quadrillionths of a second), meaning they are able to freeze all motion of the atoms in any sample, leaving only the electrons still moving.

However, the X-ray pulses are intense enough that the team was able to take single snapshots of the vibrations of the gold nanocrystals they were examining. The vibration was started with a short pulse of infrared light.

The vibrations were imaged a short time later in 3D using the coherent diffraction imaging methods pioneered in LCN by the Robinson group. The 3D movies reveal in exquisite detail the distortions taking place within the nanocrystal, with the fastest vibrations repeating every 90 picoseconds.

Professor Robinson, also from the LCN and the group leader, said: "This work represents an impressive example of teamwork by about a hundred people at SLAC. The SLAC linear accelerator was built in 1957 in direct response to the news of Sputnik.

"After compelling 50 years of sensational high energy physics, that machine has been refitted as a laser by the addition of a 100m long array of magnets. This 3km-sized machine produces a beam which is focused onto a crystal smaller than a micron in a pulse so short that all motion of its atoms is frozen still."

Video: http://www.eurekalert.org/multimedia/pub/56841.php?from=240381



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Drug reverses Alzheimer's disease deficits in mice

Drug reverses Alzheimer's disease deficits in mice

The research, funded by the National Institutes of Health's National Institute on Aging and Alzheimer's Association, reviewed previously published findings on the drug bexarotene, approved by the U.S. Food and Drug Administration for use in cutaneous T cell lymphoma. The Pitt Public Health researchers were able to verify that the drug does significantly improve cognitive deficits in mice expressing gene mutations linked to human Alzheimer's disease, but could not confirm the effect on amyloid plaques.

"We believe these findings make a solid case for continued exploration of bexarotene as a therapeutic treatment for Alzheimer's disease," said senior author Rada Koldamova, M.D., Ph.D., associate professor in Pitt Public Health's Department of Environmental and Occupational Health.

Dr. Koldamova and her colleagues were studying mice expressing human Apolipoprotein E4 (APOE4), the only established genetic risk factor for late-onset Alzheimer's disease, or APOE3, which is known not to increase the risk for Alzheimer's disease, when a Case Western Reserve University study was published last year stating that bexarotene improved memory and rapidly cleared amyloid plaques from the brains of Alzheimer's model mice expressing mouse Apolipoprotein E (APOE). Amyloid plaques consist of toxic protein fragments called amyloid beta that seem to damage neurons in the brain and are believed to cause the associated memory deficits of Alzheimer's disease and, eventually, death.

Bexarotene is a compound chemically related to vitamin A that activates Retinoic X Receptors (RXR) found everywhere in the body, including neurons and other brain cells. Once activated, the receptors bind to DNA and regulate the expression of genes that control a variety of biological processes. Increased levels of APOE are one consequence of RXR activation by bexarotene. The Pitt researchers began studying similar compounds a decade ago.

"We were already set up to repeat the Case Western Reserve University study to see if we could independently arrive at the same findings," said co-author Iliya Lefterov, M.D., Ph.D., associate professor in Pitt Public Health's Department of Environmental and Occupational Health. "While we were able to verify that the mice quickly regained their lost cognitive skills and confirmed the decrease in amyloid beta peptides in the interstitial fluid that surrounds brain cells, we did not find any evidence that the drug cleared the plaques from their brains."

The Pitt researchers postulate that the drug works through a different biological process, perhaps by reducing soluble oligomers which, like the plaques, are composed of the toxic amyloid beta protein fragments. However, the oligomers are composed of smaller amounts of amyloid beta and, unlike the plaques, are still able to "move."

"We did find a significant decrease in soluble oligomers," said Dr. Koldamova. "It is possible that the oligomers are more dangerous than the plaques in people with Alzheimer's disease. It also is possible that the improvement of cognitive skills in mice treated with bexarotene is unrelated to amyloid beta and the drug works through a completely different, unknown mechanism."

In the Pitt experiments, mice with the Alzheimer's gene mutations expressing human APOE3 or APOE4 were able to perform as well in cognitive tests as their non-Alzheimer's counterparts 10 days after beginning treatment with bexarotene. These tests included a spatial test using cues to find a hidden platform in a water maze and a long-term memory test of the mouse's ability to discriminate two familiar objects following introduction of a third, novel object.

Bexarotene treatment did not affect the weight or general behavior of the mice. The drug was equally effective in male and female mice.


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Motion quotient: IQ predicted by ability to filter visual motion

Motion quotient: IQ predicted by ability to filter visual motion

"Because intelligence is such a broad construct, you can't really track it back to one part of the brain," says Duje Tadin, a senior author on the study and an assistant professor of brain and cognitive sciences at the University of Rochester. "But since this task is so simple and so closely linked to IQ, it may give us clues about what makes a brain more efficient, and, consequently, more intelligent."

The unexpected link between IQ and motion filtering was reported online in the Cell Press journal Current Biology on May 23 by a research team lead by Tadin and Michael Melnick, a doctoral candidate in brain and cognitive sciences at the University of Rochester.

In the study, individuals watched brief video clips of black and white bars moving across a computer screen. Their sole task was to identify which direction the bars drifted: to the right or to the left. The bars were presented in three sizes, with the smallest version restricted to the central circle where human motion perception is known to be optimal, an area roughly the width of the thumb when the hand is extended. Participants also took a standardized intelligence test.

As expected, people with higher IQ scores were faster at catching the movement of the bars when observing the smallest image. The results support prior research showing that individuals with higher IQs make simple perceptual judgments swifter and have faster reflexes. "Being 'quick witted' and 'quick on the draw' generally go hand in hand," says Melnick.

But the tables turned when presented with the larger images. The higher a person's IQ, the slower they were at detecting movement. "From previous research, we expected that all participants would be worse at detecting the movement of large images, but high IQ individuals were much, much worse," says Melnick. That counter-intuitive inability to perceive large moving images is a perceptual marker for the brain's ability to suppress background motion, the authors explain. In most scenarios, background movement is less important than small moving objects in the foreground. Think about driving in a car, walking down a hall, or even just moving your eyes across the room. The background is constantly in motion.

The key discovery in this study is how closely this natural filtering ability is linked to IQ. The first experiment found a 64 percent correlation between motion suppression and IQ scores, a much stronger relationship than other sensory measures to date. For example, research on the relationship between intelligence and color discrimination, sensitivity to pitch, and reaction times have found only a 20 to 40 percent correlation. "In our first experiment, the effect for motion was so strong," recalls Tadin, "that I really thought this was a fluke."

So the group tried to disprove the findings from the initial 12-participant study conducted while Tadin was at Vanderbilt University working with co-author Sohee Park, a professor of psychology. They reran the experiment at the University of Rochester on a new cohort of 53 subjects, administering the full IQ test instead of an abbreviated version and the results were even stronger; correlation rose to 71 percent. The authors also tested for other possible explanations for their findings.

For example, did the surprising link to IQ simply reflect a person's willful decision to focus on small moving images? To rule out the effect of attention, the second round of experiments randomly ordered the different image sizes and tested other types of large images that have been shown not to elicit suppression. High IQ individuals continued to be quicker on all tasks, except the ones that isolated motion suppression. The authors concluded that high IQ is associated with automatic filtering of background motion.

"We know from prior research which parts of the brain are involved in visual suppression of background motion. This new link to intelligence provides a good target for looking at what is different about the neural processing, what's different about the neurochemistry, what's different about the neurotransmitters of people with different IQs," says Tadin.

The relationship between IQ and motion suppression points to the fundamental cognitive processes that underlie intelligence, the authors write. The brain is bombarded by an overwhelming amount of sensory information, and its efficiency is built not only on how quickly our neural networks process these signals, but also on how good they are at suppressing less meaningful information. "Rapid processing is of little utility unless it is restricted to the most relevant information," the authors conclude.

The researchers point out that this vision test could remove some of the limitations associated with standard IQ tests, which have been criticized for cultural bias. "Because the test is simple and non-verbal, it will also help researchers better understand neural processing in individuals with intellectual and developmental disabilities," says co-author Loisa Bennetto, an associate professor of psychology at the University of Rochester.

Bryan Harrison, a doctoral candidate in clinical and social psychology at the University of Rochester is also an author on the paper. The research was supported by grants from the National Institutes of Health.

Test yourself: http://www.youtube.com/watch?feature=player_embedded&v=qxt2Uo_GuXI


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Intel Haswell packs integrated voltage regulator

Intel Haswell packs integrated voltage regulator

SAN JOSE, Calif. – Intel will pack a voltage regulator on to its next generation Haswell processor, eliminating as many as seven external third party chips. The news was one of a few details Intel revealed in a Haswell briefing the same day its archrival Advanced Micro Devices announced three mobile processors.

Intel sketched out several steps it took to lower power consumption in Haswell, its next generation x86 processor geared for everything from 7W tablets to 75W servers. The techniques included integrating a voltage regulator, enhancing its 22nm process and using new power planes and states. It previously disclosed Haswell also will use a new on-chip DRAM.

Power is a major focus for Intel given its rising competition especially in tablets and servers with generally lower power chips based on ARM cores. Intel likely gave up the possibility of higher data rates in Haswell to capture the power savings. The first Haswell chips are expected to ship later this year.

Some Haswell chips will put two die in a package. The second die will be an integrated north and south bridge chip connected to the main CPU using a new low power interconnect.

All Haswell chips will sport an on-chip voltage regulator. It will combine what was in previous CPUs as many as seven external voltage regulators made by third parties, lower the bill of materials and motherboard footprint, said Rani Borkar, general manager of the Intel Architecture Group which designs the company’s main processors.

Gartner Inc. pegs the market for Intel Vcore regulators at roughly $325 million. It is slowly declining due price erosion of the components and declines in the overall PC market, said Stephan Ohr, Gartner analyst for analog and power chips.

The three largest vendors of the chips are ON Semiconductor, Intersil and Texas Instruments, according to Gartner. Linear Technology, Infineon, Maxim, Volterra and International Rectifier also participate in at least some segments such as voltage regulators for servers.

Over the past year, Haswell chip design teams worked with Intel’s fab teams to optimize the version of its 22nm process, called E1270, used for the x86 chips. Intel would not describe the enhancements, but it said their effect was to lower transistor leakage by 2-3x compared to its previous Ivy Bridge generation while lowering its minimum voltage level (Vmin) and not reducing the chip’s frequency.

The on-chip DRAM block is a novel design geared to serve the embedded Iris Pro graphics in Haswell. It is not a general purpose DRAM, said Kaizad R. Mistry, a vice president in Intel’s technology and manufacturing group.

Intel uses a separate version of its 22nm process, called E1271, for its low power SoCs such as the Atom-based Silvermont. This process is the basis of what Intel’s foundry customers use, Mistry said.

Overall, Haswell will deliver about 50 percent better battery life than the prior Ivy Bridge on active workloads while doubling graphics performance, Intel claimed. “It has content creation performance at power levels generally associated with content consumption devices,” said Borkar.

Related stories:
Slideshow: Intel on Ultrabooks, Haswell and more

AMD launches 3 mobile APUs

Intel’s Haswell boosts battery life, graphics

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Stitching defects into worlds thinnest semiconductor

Stitching defects into worlds thinnest semiconductor

May 23, 2013 — In pioneering new research at Columbia University, scientists have grown high-quality crystals of molybdenum disulfide (MoS2), the world's thinnest semiconductor, and studied how these crystals stitch together at the atomic scale to form continuous sheets. Through beautiful images of strikingly symmetric stars and triangles hundreds of microns across, they have uncovered key insights into the optical and electronic properties of this new material, which can be either conducting or insulating to form the basic "on-off switch" for all digital electronics.






The study is published in the May 5, 2013, issue of Nature Materials.

"Our research is the first to systematically examine what kinds of defects result from these large growths, and to investigate how those defects change its properties," says James Hone, professor of mechanical engineering at Columbia Engineering, who led the study. "Our results will help develop ways to use this new material in atomically thin electronics that will become integral components of a whole new generation of revolutionary products such as flexible solar cells that conform to the body of a car."

This multidisciplinary collaboration by the Energy Frontier Research Center at Columbia University with Cornell University's Kavli Institute for Nanoscale Science focused on molybdenum disulfide because of its potential to create anything from highly efficient, flexible solar cells to conformable touch displays. Earlier work from Columbia demonstrated that monolayer MoS2 has an electronic structure distinct from the bulk form, and the researchers are excited about exploring other atomically thin metal dichalcogenides, which should have equally interesting properties. MoS2 is in a class of materials called transition metal dichalcogenides, which can be metals, semiconductors, dielectrics, and even superconductors.

"This material is the newest in a growing family of two-dimensional crystals," says Arend van der Zande, a research fellow at the Columbia Energy Frontier Research Center and one of the paper's three lead authors. "Graphene, a single sheet of carbon atoms, is the thinnest electrical conductor we know. With the addition of the monolayer molybdenum disulfide and other metal dichalcogenides, we have all the building blocks for modern electronics that must be created in atomically thin form. For example, we can now imagine sandwiching two different monolayer transition metal dichalcogenides between layers of graphene to make solar cells that are only eight atoms thick -- 20 thousand times smaller than a human hair!"

Until last year, the majority of experiments studying MoS2 were done by a process called mechanical exfoliation, which only produces samples just a few micrometers in size. "While these tiny specimens are fine for scientific studies," notes Daniel Chenet, a PhD in Hone's lab and another lead author, "they are much too small for use in any technological application. Figuring out how to grow these materials on a large scale is critical."

To study the material, the researchers refined an existing technique to grow large, symmetric crystals up to 100 microns across, but only three atoms thick. "If we could expand one of these crystals to the thickness of a sheet of plastic wrap, it would be large enough to cover a football field -- and it would not have any misaligned atoms," says Pinshane Huang, a PhD student in the David Muller lab at Cornell and the paper's third lead author.

For use in many applications, these crystals need to be joined together into continuous sheets like patches on a quilt. The connections between the crystals, called grain boundaries, can be as important as the crystals themselves in determining the material's performance on a large scale. "The grain boundaries become important in any technology," says Hone. "Say, for example, we want to make a solar cell. Now we need to have meters of this material, not micrometers, and that means that there will be thousands of grain boundaries. We need to understand what they do so we can control them."

The team used atomic-resolution electron microscopy to examine the grain boundaries of this material, and saw lines of misaligned atoms. Once they knew where to find the grain boundaries, and what they looked like, the team could study the effect of a single grain boundary on the properties of the MoS2. To do this, they built tiny transistors, the most basic component in all of electronics, out of the crystals and saw that the single, defective line of atoms at the grain boundaries could drastically change the key electronic and optical properties of the MoS2.

"We've made a lot of progress in controlling the growth of this new 'wonder' nanomaterial and are now developing techniques to integrate it into many new technologies," Hone adds. "We're only just beginning to scratch the surface of what we can make with these materials and what their properties are. For instance, we can easily remove this material from the growth substrate and transfer it on to any arbitrary surface, which enables us to integrate it into large-scale, flexible electronics and solar cells."

The crystal synthesis, optical measurements, electronic measurements, and theory were all performed by research groups at Columbia Engineering. The growth and electrical measurements were made by the Hone lab in mechanical engineering; the optical measurements were carried out in the Tony Heinz lab in physics. The structural modeling and electronic structure calculations were performed by the David Reichman lab in chemistry. The electron microscopy was performed by atomic imaging experts in the David Muller lab at Cornell University's School of Applied and Engineering Physics, and the Kavli Institute at Cornell for Nanoscale Science.

The study was sponsored by the Columbia Energy Frontier Research Center, with additional support provided by the National Science Foundation through the Cornell Center for Materials Research.



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Hubble reveals the Ring Nebulas true shape

Hubble reveals the Ring Nebulas true shape

May 23, 2013 — The Ring Nebula's distinctive shape makes it a popular illustration for astronomy books. But new observations by NASA's Hubble Space Telescope of the glowing gas shroud around an old, dying, sun-like star reveal a new twist.






"The nebula is not like a bagel, but rather, it's like a jelly doughnut, because it's filled with material in the middle," said C. Robert O'Dell of Vanderbilt University in Nashville, Tenn. He leads a research team that used Hubble and several ground-based telescopes to obtain the best view yet of the iconic nebula. The images show a more complex structure than astronomers once thought and have allowed them to construct the most precise 3-D model of the nebula.

"With Hubble's detail, we see a completely different shape than what's been thought about historically for this classic nebula," O'Dell said. "The new Hubble observations show the nebula in much clearer detail, and we see things are not as simple as we previously thought."

The Ring Nebula is about 2,000 light-years from Earth and measures roughly 1 light-year across. Located in the constellation Lyra, the nebula is a popular target for amateur astronomers.

Previous observations by several telescopes had detected the gaseous material in the ring's central region. But the new view by Hubble's sharp-eyed Wide Field Camera 3 shows the nebula's structure in more detail. O'Dell's team suggests the ring wraps around a blue, football-shaped structure. Each end of the structure protrudes out of opposite sides of the ring.

The nebula is tilted toward Earth so that astronomers see the ring face-on. In the Hubble image, the blue structure is the glow of helium. Radiation from the white dwarf star, the white dot in the center of the ring, is exciting the helium to glow. The white dwarf is the stellar remnant of a sun-like star that has exhausted its hydrogen fuel and has shed its outer layers of gas to gravitationally collapse to a compact object.

O'Dell's team was surprised at the detailed Hubble views of the dark, irregular knots of dense gas embedded along the inner rim of the ring, which look like spokes in a bicycle wheel. These gaseous tentacles formed when expanding hot gas pushed into cool gas ejected previously by the doomed star. The knots are more resistant to erosion by the wave of ultraviolet light unleashed by the star. The Hubble images have allowed the team to match up the knots with the spikes of light around the bright, main ring, which are a shadow effect. Astronomers have found similar knots in other planetary nebulae.

All of this gas was expelled by the central star about 4,000 years ago. The original star was several times more massive than our sun. After billions of years converting hydrogen to helium in its core, the star began to run out of fuel. It then ballooned in size, becoming a red giant. During this phase, the star shed its outer gaseous layers into space and began to collapse as fusion reactions began to die out. A gusher of ultraviolet light from the dying star energized the gas, making it glow.

The outer rings were formed when faster-moving gas slammed into slower-moving material. The nebula is expanding at more than 43,000 miles an hour, but the center is moving faster than the expansion of the main ring. O'Dell's team measured the nebula's expansion by comparing the new Hubble observations with Hubble studies made in 1998.

The Ring Nebula will continue to expand for another 10,000 years, a short phase in the lifetime of the star. The nebula will become fainter and fainter until it merges with the interstellar medium.

Studying the Ring Nebula's fate will provide insight into the sun's demise in another 6 billion years. The sun is less massive than the Ring Nebula's progenitor star, so it will not have an opulent ending.

"When the sun becomes a white dwarf, it will heat more slowly after it ejects its outer gaseous layers," O'Dell said. "The material will be farther away once it becomes hot enough to illuminate the gas. This larger distance means the sun's nebula will be fainter because it is more extended."

In the analysis, the research team also obtained images from the Large Binocular Telescope at the Mount Graham International Observatory in Arizona and spectroscopic data from the San Pedro Martir Observatory in Baja California, Mexico.



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