jueves, 6 de octubre de 2016

The Committee on Animal Care solicits feedback

The Committee on Animal Care (CAC) and the vice president for research welcome any information which would aid our efforts to assure the humane care of research animals used at MIT and the Whitehead Institute for Biomedical Research.
 
Established to ensure that MIT researchers working with animals comply with federal, state, local and institutional regulations on animal care, the CAC inspects animals, animal facilities, and laboratories, and reviews all research and teaching exercises that involve animals before experiments are performed.
 
If you have concerns about animal welfare, please contact the Committee on Animal Care by calling 617-324-6892, or send your concern in writing to the CAC Office (Room 16-408), or email us at cacpo@mit.edu. You may also contact the vice president for research at 617-253-3206 or mtz@mit.edu. The issue will be forwarded to the chair of the CAC and the attending veterinarian.
 
All concerns about animal welfare will remain confidential; the identity of individuals who contact the CAC with concerns will be treated as confidential, and individuals will be protected against reprisal.  The Committee on Animal Care will report its findings to the vice president for research, the director of comparative medicine, the individual who reported the concern, and oversight agencies as applicable.



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Call for 2017 Excellence Awards and Collier Medal nominations

Do you have a colleague whose hard work and exceptional achievement should be recognized? Whether it’s for providing excellent service, demonstrating everyday leadership, or collaborating for results, MIT Human Resources invites you to shine the spotlight on that amazing individual — or team — by submitting a nomination for the MIT Excellence Awards and Collier Medal.

The Excellence Awards and Collier Medal are among the highest honors given to MIT employees as they acknowledge the extraordinary efforts made in the spirit of fulfilling the goals, values, and mission of the Institute.

The six MIT Excellence Award categories are:

  • Advancing Inclusion and Global Perspectives
  • Bringing Out the Best
  • Innovative Solutions
  • Outstanding Contributor
  • Serving the Client
  • Sustaining MIT

All nominations are accepted through Thursday, Oct. 20. 

Resources to facilitate nomination — award criteria, tips for writing a nomination, FAQs, and previous award recipients — are available on the MIT Human Resources website. 

Save the date for the 2017 MIT Excellence Awards and Collier Medal awards ceremony on Thursday, March 16, 2017 at 3 p.m. in Kresge Auditorium. The entire MIT community is welcome to attend.

If you have any questions, contact Cori Champagne at 617-253-5986 or at excellence@mit.edu. 



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Batteries power clean energy transformation

Batteries, it seems, are everywhere these days, yet important questions remain about what kind of energy storage technologies are needed to help the U.S. meet its commitments to cut greenhouse gases and which areas of research are most likely to pay dividends by improving existing batteries or creating entirely new battery technologies.

After exploring these questions for the past five years, Jessika Trancik, Associate Professor of Energy Studies with MIT’s Institute for Data, Systems, and Society, has found some answers that she will share at “Materials for Electrochemical Energy Storage,” the Materials Processing Center’s Materials Day Symposium on Tuesday, Oct. 18. The symposium will be held in MIT’s Kresge Auditorium, followed by a student poster session in La Sala de Puerto Rico, Stratton Student Center.

“This year's Materials Day workshop will focus on advancing materials technologies for electrochemical energy storage, as well as on new systems-level approaches to cost-effective integration of these devices in both large and small-scale power grids,” says Materials Processing Center Director Carl V. Thompson, who is the Stavros Salapatas Professor of Materials Science and Engineering at MIT.

Dynamic models

Trancik developed dynamic models of battery technology and consumer demand in two areas with potential for large impact: electric cars and energy storage at solar and wind farms. Her key findings, published in Nature Climate Change and Nature Energy this past summer, are that:

• there is a window of opportunity for adoption of grid-level battery storage technologies for solar and wind electric generators at particular sites; and

• affordable electric cars available now could meet 87 percent of Americans’ daily driving needs with charging just once a day, for example, overnight.

“In some locations, for example, some stationary storage technologies available today add profit to solar and wind, and that’s taking into account the lifetime of the project and so forth,” Trancik explains. “In the next few years, there is an opportunity to do that at low cost with relatively little subsidy needed.” However, as solar and wind prices continue to fall, storage technologies will also need to become cheaper if they are to continue to add value.

Trancik, whose input was solicited by the White House ahead of the 2015 climate change negotiations, notes that commitments to the Paris Agreement, if met, will likely lead to significant growth in intermittent solar and wind installations. She says the next 15 years are critical for storage technology development. “By 2030, we really need to have developed affordable and well-functioning storage technologies in order to continue to support the growth of solar and wind worldwide,” she adds.

Similarly, with battery-based vehicles, such as the currently available Nissan Leaf, the outlook for converting a large portion of cars on the road from gasoline to electric looks promising. But, Trancik cautions, since electric vehicles have a shorter travel potential on a full charge than a gasoline car has on a full tank, a solution is needed for the 13 percent of cars on the road whose daily driving range would not be met. “There are a certain number of days during which the average driver will exceed that range. ... People buy and own vehicles to get them where they want to go on all days, not just 87 percent of days,” Trancik says. Some type of convenient, on-demand car sharing or other ways to meet these needs are critical, she suggests.

This year’s Materials Processing Center symposium speakers are:

• Kevin Eberman, product development manager at 3M;

• Jessika Trancik, associate professor of energy studies within the Institute for Data, Systems and Society at MIT;

• Boris Kozinsky, principal scientist at Bosch Research;

• Yang Shao-Horn, professor of mechanical engineering and materials science and engineering at MIT;

• Glen D. Merfeld, product science leader at GE Global Research;

• Yet-Ming Chiang, professor of materials science and dngineering at MIT; and

• Martin Z. Bazant, professor of chemical engineering and applied mathematics at MIT.

Bazant, who is executive officer of chemical engineering as well as professor of mathematics, will present his recent work on lithium-ion, lithium-air, and lithium-metal batteries. Recent findings in Bazant’s group uncovered two different ways that lithium deposits grow on the surface of lithium metal electrodes and showed how to effectively control destructive lithium filament growth at lower power levels.

“Energy storage devices are increasingly playing key roles in reducing carbon emissions through use in hybrid and all-electric vehicles, and they will have a key role in efficient use of both conventional sources of electrical power and power from clean intermittent sources such as solar and wind energy,” Thompson says. “These technology drivers have led to rapid advances in development of new materials and device concepts for electrochemical energy storage using batteries. This includes not just lithium-ion batteries, but also other metal-ion batteries, metal-air batteries and flow batteries.”

Registration for Materials Day is now open.



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Provider, improve thyself

In the developing world, a large portion of health care providers have no formal medical training. Now a new study of rural India, co-authored by an MIT professor, shows that modest levels of medical training can improve the quality of health care furnished by those informal providers.

More specifically, the study, in the form of a novel field experiment conducted in the state of West Bengal, India, shows that informal care providers are more likely to handle cases correctly and compile basic checklists of patient information after undergoing about 150 hours of training over a period of months.

“They do seem to be learning, and they are using this knowledge,” says Abhijit Banerjee, the Ford International Professor of Economics at MIT and a co-author of the study.

The experiment analyzed whether unlicensed health care providers could act adequately when faced with information pertaining to three types of illness — chest pain, breathing problems, and diarrhea — that require different types of responses. Some cases require referrals to other providers; in other cases the primary-care providers can at least offer advice to help reduce the apparent medical problems at hand.

The low-cost experiment is now being scaled up by the state of West Bengal, to see if this approach can improve care for segments of the population that do not regularly access formal medical providers. About 54 percent of primary-care medical visits in West Bengal occur in these informal settings. That figure ranges as high as 75 percent in some other Indian states.

The paper, “The Impact of Training Informal Healthcare Providers in India: A Randomized Controlled Trial,” is being published Friday in the journal Science.

The co-authors are Banerjee; Jishnu Das of the World Bank; Abhijit Chowdhury of the Institute of Post Graduate Medical Education and Research at SSKM Hospitals in Kolkata, India; and Reshmaan Hussam PhD ’15, a postdoc at Yale University.

Banerjee is a co-founder of MIT’s Abdul Latif Jameel Poverty Action Lab (J-PAL), which focuses on scientifically rigorous field experiments that produce information potentially relevant to poverty alleviation efforts.

Better case management

The study was conducted with the cooperation of 304 informal health care providers in West Bengal; the 150 hours of training the participants received was divided into 72 sessions over a nine-month period. The researchers used “standardized patients” to conduct the study — that is, people playing the role of patients who had symptoms consistent with angina, asthma, and diarrhea.

The results reveal that providers with training increased, by 4.1 percentage points, how often they developed a checklist of medical data relevant to the patients’ conditions — a standard medical practice that helps with diagnoses and patient assessments over time.

Similarly, informal providers increased their “correct case management,” an overall measure of their decision making in a given situation, by 7.9 percentage points. While trained informal providers still lag formally trained doctors in the region’s public clinics in this statistic, the training essentially cuts that gap in half.

To this end, the training course was not specifically focused on just the three illnesses but tried to improve diagnostic medical skills and decision-making more broadly.

“It evaluates your general skill as a health care provider,” Banerjee says. In daily medicine, he notes, “We [can’t] predict what condition [providers] will have to look at. A doctor deals with whatever occurs.”

The training did not have any effect in reducing the overprescription of medicine and antibiotics among informal providers.

Policy implications

As the researchers note, government policies vary globally when it comes to the roles that clinicians without full medical degrees can assume. In 25 of 47 sub-Saharan countries in Africa, as the paper observes, there is an officially sanctioned role for such clinicians.

Since the 1940s, India has discouraged an active role for providers without full medical training. However, such caregivers do exist because of the limited reach of formal medical providers.

Given this reality, the state of West Bengal helped provide funding for the current study, in order to see what impact it might have. The experiment was explicitly designed so that informal providers were not being required to provide immediate doses of medicine to the “standardized patients” they encountered.

“It was a state-government sponsored effort,” notes Banerjee. “These people exist, so the question is: What do you do about it?”

Banerjee acknowledges that the project simply represents one study, and thinks more on-the-ground research will be needed. West Bengal’s scale-up of the program is being launched this fall.

‘They are going to start training everybody,” Banerjee says, adding that the state government has “the aim of figuring out if this is a worthwhile investment for them.”

The study was supported by the West Bengal National Rural Health Mission, the World Bank’s Knowledge for Change program, and a Bristol Myers Squibb award.



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miércoles, 5 de octubre de 2016

Manufacturing microspheres

Microencapsulation, in which a tiny particle of one material is encased within a shell made from another, is widely used in pharmaceuticals manufacturing and holds promise for other areas, such as self-repairing materials and solar power.

But most applications of microencapsulation require particles of uniform size, and that’s something that existing fabrication techniques don’t reliably provide. In products with a high profit margin, such as pharmaceuticals, it can be cost effective to mechanically separate particles of the proper size from those that are too large or too small, but in niche or small-margin products, it may not be.

In the latest issue of the journal Lab on a Chip, researchers from MIT’s Microsystems Technology Laboratories report a new microencapsulation technique that yields particles of very consistent size, while also affording a high rate of production.

Moreover, the devices used to produce the spheres were themselves manufactured with an affordable commercial 3-D printer. The ability to 3-D print fabrication systems would not only keep manufacturing costs low but also allow researchers to quickly develop systems for producing microencapsulated particles for particular applications.

“When you print your microsystems, you can iterate them very fast,” says Luis Fernando Velásquez-García, a principal research scientist in the Microsystems Technology Laboratories and senior author on the new paper. “In one year, we were able to make three different generations that are significantly different from one another and that in terms of performance also improve significantly. Something like that would be too expensive and too time consuming with other methods.”

Velásquez-García is joined on the paper by Daniel Olvera-Trejo, a postdoc at Mexico’s Tecnológico de Monterrey who was a visiting researcher at MIT under the auspices of a new nanoscience research partnership between the two universities.

Concentric circles

The researchers’ new system adapts the same core technology that Velásquez-García’s group has previously explored as a means for depositing material on chip surfaces, etching chips, generating X-rays, spinning out nanofibers for use in a huge range of applications, and even propelling nanosatellites.

All of these applications rely on dense arrays of emitters that eject fluids, electrons, or streams of ions. The emitters might be conical, cylindrical, or rectangular; etched microscopically or 3-D printed; hollow, like nozzles, or solid. But in all instances, Velásquez-García’s group has used electric fields — rather than, say, microfluidic pumps — to control their emissions.

The new emitters are a variant on the hollow 3-D-printed design. But instead of having a single opening at its tip, each emitter has two openings — a hole and a concentric ring. The openings are fed by separate microfluidic channels. If the viscosity and electrical conductivity of the fluids fed through the channels, the strength of the electric field that draws them up, and the length and diameter of the channels are precisely calibrated, the emitters will produce tiny spheres in which the material drawn through the outer ring encases the material drawn through the center hole.

According to Velásquez-García, the physics describing the relationship of forces that produces the microcapsules is only around a decade old. Other researchers have built individual emitters that can produce microcapsules, but Velásquez-García’s group is the first to arrange the emitters in a monolithic array — 25 emitters packed onto a chip that’s less than an inch square — while maintaining both efficiency and uniformity. The arrays are also modular in design, so they can be tiled together to produce larger arrays.

Pharmaceuticals manufacturers use microencapsulation to protect drugs from degradation before they reach their targets. But researchers have also explored microencapsulation as a way to make self-healing materials: The same stress that causes a material to crack would break the capsules, releasing an epoxy that would patch the crack. There, uniformity of capsule size is crucial to ensure that distributing the capsules throughout the material doesn’t compromise its structural integrity.

Dye-sensitized solar cells, another potential application for the new technique, are potentially a cheap alternative to silicon solar cells. They use tiny particles of dye-coated metal suspended in some other material, often a fluid. The dye converts light to electricity, which the metal transmits to electrodes. Preserving an exact ratio of dye-covered surface area to volume of metal maximizes the efficiency of the cell.

Printing possibilities

In their initial experiments, Velásquez-García and Olvera-Trejo used water and sesame oil as their fluids, and the emitters were made from plastic. The resulting microspheres were around 25 micrometers in diameter. There are, however, 3-D printers that use metal or ceramics, which could produce emitters able to tolerate hotter or harsher fluids.

To pack the emitter arrays into the smallest possible volume, the researchers used helical fluid channels, which spiral around the interiors of the emitters, minimizing their height. To control the rate of emission, the channels also taper, from 0.7 millimeters at their bases to 0.4 mm at their tips. Such small and complex devices would be virtually impossible to manufacture using standard microfabrication processes, Velásquez-García says.

“These devices can only be made if you print them,” Velásquez-García says. “We’re not doing printing because we can. We’re doing printing because it enables something that didn’t exist before that brings very exciting possibilities.”

“The full implications of this are so large that it’s not easy to fully appreciate what this could do,” says Roger Howe, a professor of electrical engineering at Stanford University and faculty director of the Stanford Nanofabrication Facility. “It has the possibility of revolutionizing the making of very sophisticated large-area devices. This would be the kind of technology that would allow you to do the Internet of things, to build functionality into structures at much, much lower cost than you could by gluing a silicon chip on. And you could actually have higher performance because the sensing is built into the physical structure.”

“My group would be users of this,” he adds. “And many of the faculty using the [Stanford nanofabrication] facility would be very excited to get their hands on this.”



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Bruno Perreau named to the French Academic Palms

Bruno Perreau, the Cynthia L. Reed Professor of French Studies, has been appointed by the French Prime Minister to the prestigious French Academic Palms (l’Ordre des Palmes académiques), the highest distinction for professors in France, given in recognition of exemplary academic contributions to French education and culture.

“Being named a chevalier in the Order of Academic Palms by the French Prime Minister came as a surprise,” said Perreau. “I feel very honored by such a distinction, which recognizes my effort to build a bridge between France and the U.S.”

Established by Napoleon I in 1808, membership in the Order of the French Academic Palms acknowledges the merits, talents, and exemplary activities of academics in service to French education and culture.

“Bruno is a leading figure shaping the debates about gender, sexuality, and politics in France,” said Jing Wang, interim head of Global Studies and Languages at MIT. “His early work has made major contributions to the interdisciplinary literature on adoption, both for its systematic analysis of adoption in France and for the theoretical insights it offers to those who are working in the U.S. and other social contexts.”

Perreau's recent book, "The Politics of Adoption" (MIT Press, 2014), explores the way ideas about a specifically French nature, structured by heteronormative family norms, has become essential to French citizenship. In his new book, "Queer Theory: The French Response" (Stanford University Press, October 2016), Perreau examines the return of French theory to France through public debates on marriage, education, and the globalization of sexuality. He argues that a sense of belonging is not a given, but consists of perpetual reexaminations of one's relations to multiple communities. In January 2017, he will publish another book, co-edited with Joan W. Scott: "Transformer la République" (Presses de Sciences Po).

At MIT, Perreau teaches classes on contemporary French society and culture, as well as on gender and social theory. His courses include Social and Literary Trends in Contemporary Short French Fiction; Childhood and Youth in French and Francophone Cultures; Queer France; The Invention of French Theory; and Understanding Contemporary French Politic.

Story by SHASS Communications
Editorial and Design Director: Emily Hiestand
Communications Associate: Daniel Evans Pritchard

 


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Rewarding Boston’s safest driver

Boston’s roads may be getting a little safer, thanks to drivers’ mobile phones. A new competition from the city of Boston is putting these devices — traditionally one of the biggest sources of driver distraction — to work to measure and improve users’ driving.

Announced by Mayor Martin J. Walsh on Monday, the Boston’s Safest Driver Competition will use a smartphone app developed by MIT spinout Cambridge Mobile Telematics to score drivers on behaviors associated with safer driving. Drivers who have the safest records will be eligible for prizes throughout the competition, which runs through Dec. 3.

The competition marks the first time that a city has turned to the emerging technology of telematics — apps and hardware that measure driving behavior — Walsh said at a Monday launch event in Copley Square.

“We are looking at new technology … and we’re working to educate road users on how to maximize safety,” Walsh said. “I think that’s one of the biggest things we can do is to make sure we educate all people. That’s the area where innovation can help us, and we can even have some fun with it.”

The Boston’s Safest Driver app will provide feedback to drivers on five areas associated with risky driving: rapid acceleration, harsh breaking, sharp turns, at-risk speeding, and phone distraction. The app runs on a smartphone’s background, and scores are penalized if the phone is used while driving.

For Cambridge Mobile Telematics CTO Hari Balakrishnan, the competition is a welcome way to focus on making Boston’s roads safer.

“Given our national and global footprint, it is extremely gratifying and important for us at Cambridge Mobile Telematics to focus on our home city,” said Balakrishnan, who is also the Fujitsu Professor of Electrical Engineering and Computer Science at MIT.

Launched in 2010 by Balakrishnan and fellow MIT professor of electrical engineering and computer science Samuel Madden, the Boston-based company has deployed their DriveWell program in numerous safe-driving apps and programs in countries across the world.

DriveWell uses a smartphone’s sensors, such as accelerometers, gyroscopes, and position sensors, to collect data and report back to a driver on their driving, Balakrishnan explained. Under the program, distracted driving can drop by 35 percent or more across all users within a month, he said.

The competition is the result of a partnership between Cambridge Mobile Telematics, the Arbella Insurance Foundation, and the city of Boston’s Vision Zero Task Force, which aims to eliminate fatal and serious traffic crashes in the city by 2030.

“Our mission at Cambridge Mobile Telematics is to make roads safer by making drivers better, and we’re using smartphones to achieve that goal,” Balakrishnan said. “We are using smartphones to show that safe drivers are made, not born.” 



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