Showing posts with label university of wisconsin. Show all posts
Showing posts with label university of wisconsin. Show all posts

Thursday, September 27, 2012

National Science Foundation Selects University of Wisconsin-Madison Professor F. Fleming Crim to Head Mathematical & Physical Sciences Directorate



The National Science Foundation (NSF) has selected F. Fleming Crim to serve as assistant director for the Directorate of Mathematical and Physical Sciences (MPS). Crim will lead a staff of 160 and an annual budget of $1.3 billion. MPS supports core research in astronomy, chemistry, physics, material science and mathematics

Currently, Crim is the John E. Willard and Hilldale Professor in the Department of Chemistry at the University of Wisconsin-Madison. His research group uses lasers to understand chemical reaction dynamics occurring in gases and in liquids.

"Dr. Crim will lead a directorate that has diverse and robust investments in fundamental research," said NSF Director Subra Suresh. "We greatly look forward to his contributions to NSF. We have tremendous confidence in his ability to keep MPS and the agency at the cutting edge of research and technology in the 21st century."

The scope of scientific and educational activity supported in MPS is enormous, ranging from phenomena at cosmological distances, to chemistry of life processes, through quantum mechanical processes in atomic and subatomic physics, to nanomaterials, to mathematics. MPS funds the operations and management of 14 major multi-user facilities, allowing thousands of scientists and students to press the bounds of scientific knowledge, and to invest in potential future projects needed to remain at the cutting-edge of research. MPS provides about 51 percent of the federal funding for basic research at academic institutions in the mathematical and physical sciences.

Crim has lectured around the world and published more than 150 papers. He received his bachelor's degree from Southwestern University and his doctorate from Cornell University. His research and teaching have earned many awards throughout his career. These include the Plyler Prize of the American Physical Society, the Langmuir Award of the American Chemical Society, and the Centenary Medal of the Royal Society of Chemistry (London).

He is an Honorary Fellow of the Chemical Research Society of India and an Honorary Professor of the Dalian Institute of Chemical Physics of the Chinese Academy of Sciences. He is a Fellow of the American Physical Society, American Chemical Society, and the American Association for the Advancement of Science. Crim is a member of both the National Academy of Sciences and the American Academy of Arts and Sciences.

Crim will begin his NSF appointment in January 2013.

 -NSF-

Thursday, May 3, 2012

Nature Observation Database Receives One-Millionth Entry


Key database monitoring climate change received its one-millionth report from a network of "citizen scientists"

On April 30, 2012, the USA National Phenology Network (NPN), partially funded by the National Science Foundation (NSF), received its one-millionth nature observation from volunteers--many of whom are non-scientists or "citizen scientists." The observation will help understand the impacts of climate change on Earth's plants and animals.

Scientists and citizen volunteers contribute individual bits of data to NPN daily concerning phenology, the study of the timing of plant and animal responses--such as leafing, flowering, nesting, foliage changes, hibernation and migration--to seasonal changes.

Resource managers combine the data into an increasingly detailed record of how Earth's climate is evolving and how it might affect humans and Mother Nature down the road.

Hitting the one-millionth observation is exciting because researchers and decision-makers need more information to understand and respond to our rapidly changing planet," said Jake Weltzin, a U.S. Geological Survey scientist and executive director of NPN. "More information means better-informed decisions that ensure the continued vitality of our natural areas that we all depend on--and enjoy."

One millionth observation
Watching and reporting the flowering of a nearby vine maple, Acer circinatum, turned into the millionth observation submitted through NPN's online observation program, Nature's Notebook. Lucille Tower, an amateur scientist from Portland, Ore. submitted the record.

"Tower responded "yes" to the question on the NPN's observation submission form: "Did you see: One or more fresh open or unopened flowers or flower buds visible in the plant?" The record marked a precisely defined point in the life cycle of the vine maple, something that researchers observe while monitoring how climate change affects the start and end point of a plant's viability.

"We're excited about the quantity of observations and what it means for potentially answering the big questions," said Alyssa Rosemartin, NPN's assistant director.

"Our first records in the contemporary system are from Erin Lindquist, a professor at Meredith College, whose students collected thousands of records on deciduous tree phenology in North Carolina in the fall of 2008, and the millionth was submitted by a participant in Portland Budwatch, one of our partners that has set up several phenology trails and trained 100 observers in Portland. Look how far we've come."

Societal and economic benefits
The NPN provides a myriad of societal benefits by, for example, supporting the development of more accurate forecasts of the onset of allergy seasons; the spread of vector-borne diseases, such as lyme disease and West Nile virus; the movements of invasive plants; the development of drought conditions--information that could be used to help improve the health and welfare of large human populations, contribute to the management of water resources, wildlife and working farms and ranches, and maintain the vitality of ecosystems.

Weltzin says the NPN database also supports analyses of climate-change impacts that have important potential economic implications. Several examples:

•NPN data is currently being used to help determine the chances of costly and destructive western wildfires.
•The NPN recently established an Interagency Agreement with the National Oceanic and Atmospheric Administration to study patterns and trends occurring in the oceans, which could have profound implications for the multi-million-dollar U.S. fishing industry.
•Pollination by native insects currently contributes more than $3 billion in agricultural crops each year. But climate-driven changes in the phenology of crops and native insects could change the effectiveness of insect pollination--for better or worse. NPN volunteers are currently observing insect and crop phenology together and thereby contributing to our understanding of related changes and helping to ensure the viability of crops across the United States.
•NPN volunteers are currently tracking the leafing of sugar maple trees, which could contribute to improved predictions of sap runs and ultimately the production of maple syrup, which is important not only to pancake lovers but also to the economy of the New York/New England region.

Increasing the application of nature observations to economic analyses is a goal of the NPN, and citizen scientists have more than been up to the job. "Depending on the task at hand, trained non-scientists can produce data that is just as reliable as data produced by (professional) scientists," said Weltzin.

Steps in the journey
In addition to producing high quality data, armies of NPN volunteers also produce a high quantity of data. The NPN typically receives between 2,000 and 3,000 nature observations per day-most of which would otherwise be unobtainable.

Weltzin said that each and every one of these observations is important because they help fill a hole in our knowledge base. Moreover, a single observation can be analyzed in tandem with other observations to help create the big picture of how a particular species is responding to climate changes.

Suppose, for example, that several volunteers in a certain geographic area each alert the NPN as to the first bloom date of a dogwood tree in the spring. Those individual observations could then be analyzed as a group to determine the pattern of dogwood blooms in the area.

"So much of our improved understanding about global environmental changes is driven by varied and valuable sources of information that include ambitious networks of citizen-scientists," said John Wingfield, NSF assistant director for Biological Sciences. "Knowledge gained from their dedicated work will continue to have a lasting effect on how we understand regularly recurring biological phenomena for hundreds of plant and animal species and collectively, they contribute to the policy arena."

Changing seasons
Changes in phenology are among the most sensitive biological indicators of global change. Across the world, many springtime events are occurring earlier--and fall events happening later--than in the past. Plants and animals are responding to these changes in different ways and at different speeds. These varying responses can be damaging to the life-sustaining relationships among creatures that have been dynamically stable for thousands of years.

For example, some wildflowers that migratory hummingbirds look for when they arrive in their summer habitats are flowering earlier--even before the hummingbirds arrive. The resulting missed opportunity with the flowers can deprive the birds of an important food source. If the trend continues, populations of hummingbirds and wildflowers could precipitously decline.  In addition, some birds now remain year-round in their summer habitats instead of flying south for the winter.

Because of these types of changes, scientists need more and improved information about the pace and pattern of nature--locally to nationally--to answer important scientific and societal questions and to build the tools and models needed to help people understand and adapt to the changes at hand.

Individuals of all ages, from school children to retirees, as well as entire classes and community groups, are invited to join the NPN "army" of citizen scientists; no minimal level of commitment is required. Some volunteers submit their observations on a regular basis while others contribute occasionally, or even contribute valuable archived "shoeboxed" records that, when possible, are added to the NPN database to support analyses of long-term trends.

What could be in it for you?
Weltzin said that volunteers contribute to the NPN for varied reasons, including the opportunity to:

•Support the environmental field and the advancement of science.
•Receive feedback from scientists about how the data they collected is being used and helping to advance science.
•Put to good use "shoe box" data that they have previously collected about seasonal phenomena.
•Interact via various social media forums sponsored by NPN with non-scientists who share similar interests.
•Connect with fellow scientists who have overlapping research interests and resources to share with colleagues in their field.
•Use the NPN Web site to announce events, news items and festivals that would interest NPN volunteers.

-- Lily Whiteman, (703) 292-8070 lwhitema@nsf.gov

Investigators
Susan Mazer
Jake Weltzin
Mark Schwartz

Related Institutions/Organizations
University of Wisconsin-Milwaukee

Liquid Crystal Design


Engineers develop technique to craft new materials using liquid crystals as structural guides

Liquid crystals, ubiquitous in cell-phone screens and computer monitors, were known to science long before engineers realized their utility in displays and other technologies. Now, an international team of researchers has discovered how to use liquid crystals as scaffolding to build novel materials with undiscovered properties.

Reporting their findings in the journal Nature on May 3, the researchers describe a sophisticated computational model for determining how liquid crystals behave within the confines of nanometer-scale droplets containing molecules that lower the surface tensions of liquids, called surfactants.

The researchers, led by University of Wisconsin-Madison engineer Juan de Pablo, show that as the droplets cool, the liquid crystals confine the surfactant molecules, organizing them into discrete structures.

As the researchers adjusted the model's parameters, such as droplet size or surfactant concentration, the simulation revealed that it is possible to use the technique to guide self-assembled structures with a wide range of properties and applications.

For example, the researchers suggest the technique could be used to construct materials from DNA building blocks, allowing unique detectors for biological materials and toxins.

"The researchers have taken a new and exciting approach to the study of liquid crystals, which will have impact in several scientific and technical arenas," adds Mary Galvin, National Science Foundation (NSF) program director for Materials Research Science and Engineering Centers.

NSF supported the research through the University of Wisconsin-Madison's Center on Nanostructured Interfaces, an NSF Center of Excellence for Materials Research and Innovation.

For more information, read the full University of Wisconsin-Madison press release.

 -NSF-

Monday, March 5, 2012

Developing Robots That Can Teach Humans

Researchers are programming robot teachers to gaze and gesture like humans

When it comes to communication, sometimes it's our body language that says the most--especially when it comes to our eyes.

"It turns out that gaze tells us all sorts of things about attention, about mental states, about roles in conversations," says Bilge Mutlu, a computer scientist at the University of Wisconsin-Madison.

Mutlu knows a thing or two about the psychology of body language. He bills himself as a human-computer interaction specialist. Support from the National Science Foundation (NSF) is helping Mutlu and his fellow computer scientist, Michael Gleicher, take gaze behavior in humans and create algorithms to reproduce it in robots and animated characters.

"These are behaviors that can be modeled and then designed into robots so that they (the behaviors) can be used on demand by a robot whenever it needs to refer to something and make sure that people understand what it's referring to," explains Mutlu.

Both Mutlu and Gleicher are betting that there will be significant benefits to making robots and animated characters "look" more like humans. "We can build animated agents and robots that can communicate more effectively by using the very subtle cues that people use," says Gleicher.

Mutlu sets up experiments to study the effect of a robot gaze on humans. "We are interested in seeing how referential gaze cues might facilitate collaborative work such that if a robot is giving instructions to people about a task that needs to be completed, how does that gaze facilitate that instruction task and people's understanding of the instruction and the execution of that task," says Mutlu.

To demonstrate, a three-foot-tall, yellow robot in the computer sciences lab greets subjects, saying: "Hi, I'm Wakamaru, nice to meet you. I have a task for you to categorize these objects on the table into boxes."

In one case, the robot very naturally glances toward the objects it "wants" sorted as it speaks. In another case, the robot just stares at the person. Mutlu says the results are pretty clear. "When the robot uses humanlike gaze cues, people are much faster in locating the objects that they have to move."

Another experiment run by Mutlu and Gleicher's team explores how an animated character's eyes affect human learning. A character projected on a screen says to the viewer, "Today, I'll be telling you a story that comes straight from ancient China." Behind the animated character is a map of China that he'll be referring to in the lecture that runs several minutes.

"The goal of the experiment is to see if we could achieve a high-level outcome, like learning, by controlling an animated character's gaze," says Gleicher. "What we found was when the lecturer looked at the map at appropriate times to indicate to the participant that now I'm talking about something on the map, the participant ended up learning more about spatial locations."

The team hopes their work will transform how humanoid robots and animated characters interface with people, especially in classrooms. "We can design technology that really benefits people in learning, in health and in well-being, and in collaborative work," notes Mutlu.

Now, that's technology worth keeping an eye on!

Miles O'Brien, Science Nation Correspondent
Jon Baime, Science Nation Producer

Monday, February 13, 2012

Developing Hardier, Weather-resistant Crops

Botanist searches for genes that would make a better root

At first, the back room of plant physiologist Edgar Spalding's lab at the University of Wisconsin-Madison might be mistaken for an alien space ship set straight out of a Hollywood movie. It's a room bathed in low-red light with camera lenses pointing at strange looking entities encased in Petri dishes.

A closer inspection reveals the Petri dishes contain nothing alien at all, but rather very down-to-earth corn seedlings. They're grown in red light for optimal growth. They're just one of the plants featured in thousands of time-lapse movies Spalding has created over the past five years. The goal: figure out how to grow crops optimally suited to survive, and thrive.

"We can't hope to improve a plant unless we understand it well," says Spalding. With support from the National Science Foundation (NSF), Spalding is exploring just what makes plants tick. He says the key is to study the function of each of the thousands of genes that make up the plants' DNA. "One way to do that is to collect images of those plants that have those genes altered in some way. And by measuring how those plants grow and develop differently," says Spalding.

"We are able to infer the function of the gene that's been manipulated," he continues. Researchers have created thousands of genetically different corn plants. Spalding uses specially rigged cameras to snap pictures every 30 seconds or so of the plants' roots as they grow.

He also uses a six-foot high robotic camera that's capable of shooting dozens of roots at once. "We have made hundreds of thousands of measurements from thousands of different plants. Let's say we had a ruler, we'd probably be on number two... maybe," he says with a chuckle. The time-lapse movies are loaded into a computer and an algorithm measures cellular growth rates in the root with pinpoint accuracy, as well as the angle and curvature of the root tip.

"By using this so-called computer vision or machine vision to track [the plants] growth and development, we can get at the genes that control root growth and those hopefully will have fundamental importance to crop improvement. It lays the foundation for discoveries that will help improve plants for human purposes."

Spalding is sowing the seeds for better crops of the future. It's an idea he thinks is worth growing.

Miles O'Brien, Science Nation Correspondent
Jon Baime, Science Nation Producer

Friday, January 27, 2012

Atom-level View of Nanoscale Interface

An atom-level view of the nanoscale--mere billionths of a meter--interface between amorphous carbon and diamond. At such a small scale, the surfaces are rough, although researchers have been treating them as smooth. A team of engineers from the University of Wisconsin-Madison, used computer simulations to demonstrate that friction at the atomic level behaves similarly to friction generated between large objects. They found that friction is proportional to the number of atoms that interact between two nanoscale surfaces. The researchers' simulations showed that, at the nanoscale, materials in contact behave more like large, rough objects rubbing against each other, rather than as two perfectly smooth surfaces, as was previously imagined. The research was supported in part by a grant from the National Science Foundation.

Further information is available in the UW news story Models present a new view of nanoscale friction. (Date of Image: 2009)

Credit: Courtesy University of Wisconsin

Thursday, January 26, 2012

NASA Renames Earth-Observing Mission in Honor of Satellite Pioneer

Steve Cole
Headquarters, Washington

Rani Gran
Goddard Space Flight Center, Greenbelt, Md.

WASHINGTON -- NASA has renamed its newest Earth-observing satellite in honor of the late Verner E. Suomi, a meteorologist at the University of Wisconsin who is recognized widely as "the father of satellite meteorology." The announcement was made Jan. 24 at the annual meeting of the American Meteorological Society in New Orleans.

NASA launched the National Polar-orbiting Operational Environmental Satellite System Preparatory Project, or NPP, on Oct. 28, 2011, from Vandenberg Air Force Base in California. NPP was renamed Suomi National Polar-orbiting Partnership, or Suomi NPP. The satellite is the first designed to collect critical data to improve short-term weather forecasts and increase understanding of long-term climate change.

"Verner Suomi's many scientific and engineering contributions were fundamental to our current ability to learn about Earth's weather and climate from space," said John Grunsfeld, associate administrator of NASA's Science Mission Directorate in Washington." Suomi NPP not only will extend more than four decades of NASA satellite observations of our planet, it also will usher in a new era of climate change discovery and weather forecasting."

The Suomi NPP mission is a bridge between NASA's Earth Observing System satellites to the next-generation Joint Polar Satellite System, or JPSS, a National Oceanic and Atmospheric Administration (NOAA) program. JPSS is the civilian component of the former National Polar-orbiting Operational Environmental Satellite System (NPOESS), which was reorganized by the Obama Administration in 2010.

"The new name now accurately describes the mission," said Michael Freilich, director of the Earth Science Division in NASA's Science Mission Directorate. "Suomi NPP will advance our scientific knowledge of Earth and improve the lives of Americans by enabling more accurate forecasts of weather, ocean conditions and the terrestrial biosphere. The mission is the product of a partnership between NASA, NOAA, the Department of Defense, the private sector and academic researchers."

Verner Suomi pioneered remote sensing of Earth from satellites in polar orbits a few hundred miles above the surface with Explorer 7 in 1959, and geostationary orbits thousands of miles high with ATS-1 in 1966. He was best known for his invention of the "spin-scan" camera which enabled geostationary weather satellites to continuously image Earth, yielding the satellite pictures commonly used on television weather broadcasts. He also was involved in planning interplanetary spacecraft missions to Venus, Jupiter, Saturn, Uranus and Neptune.

Suomi spent nearly his entire career at the University of Wisconsin-Madison, where in 1965 he founded the university's Space Science and Engineering Center with funding from NASA. The center is known for Earth-observing satellite research and development. In 1964, Suomi served as chief scientist of the U.S. Weather Bureau for one year. He received the National Medal of Science in 1977. He died in 1995 at the age of 79.

"It is fitting that such an important and innovative partnership pays tribute to a pioneer like Verner Suomi," said Mary Kicza, assistant administrator for NOAA's Satellite and Information Service. "Suomi NPP is an extremely important mission for NOAA. Its advanced instruments will improve our weather forecasts and understanding of the climate and pave the way for JPSS, our next generation of weather satellites."

Suomi NPP currently is in its initial checkout phase before starting regular observations with all of its five instruments. Commissioning activities are expected to be completed by March. NASA's Goddard Space Flight Center in Greenbelt, Md., manages the Suomi NPP mission for the Earth Science Division of the Science Mission Directorate at NASA Headquarters in Washington. The JPSS program provides the satellite ground system and NOAA provides operational support.

For more information about Verner Suomi's career, visit http://earthobservatory.nasa.gov/Features/Suomi/.

For more information about the Suomi NPP mission, visit http://www.nasa.gov/npp.

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