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NANO powders and pseudo-elasticity. Technion Research Highlight.

Physical Review Letters reports: Technion researchers discover a new mechanism for contact formation between crystalline nanoparticles in nanopowders


Nanopowders are the basis of many nanotechnologies; Technion researchers coin a new term in the field of nanomechanics: “pseudo-elasticity”

Pictures of the simulations that were performed in the Technion show the process of contact formation between two nanocrystals. (Left) The atomic structure of nanocrystals before contact. (Right) The pseudo-elastic mechanism in action (1 to 8). In order to demonstrate the mechanism, only some of the atoms necessary for the process are shown. One can see that during the process of adhering, many defects are created (the atoms appear in dark grey in pictures 3-7), but at the end, the nanocrystals do not exhibit any defects (8). Illustration: Technion Spokesman.

Technion researchers have discovered a new mechanism for adhesive contact formation between crystalline nanoparticles, and have thus shed light on a long-standing mystery surrounding the adhesion between nanocrystals. The report appears in the prestigious scientific journal, Physical Review Letters.

 “In the scientific world today, there are two central schools of thought regarding the way nanocrystals come into contact,” says Prof. Eugene Rabkin of the Faculty of Materials Engineering at the Technion. “One school asserts that the crystals homogenously stretch in order to stick together (elastic deformation), but once they adhere, they return to their original shape. According to the other school of thought, as they approach, the inter-atom forces are strong enough to overcome the individual nanocrystals’ strength and compel them to change shape irreversibly (plastic deformation).”

Metallic nanocrystals have an orderly atomic structure, and the way in which they can undergo plastic deformation is by creating a linear “defect” in the orderly atomic structure. These linear defects, which are called “dislocations”, were first observed under a microscope in the mid-1950s and since then they have served as an important basis for understanding the mechanical characteristics of materials. Because of the size of nanocrystals, they generally have a perfect atomic structure and do not have dislocations.

 “Justification for both schools of thought has been offered, yet without a way to resolve the contradiction between them,” adds Prof. Rabkin. “On the one hand, analytical models have shown that the stresses that are created in nanocrystals during the contact formation are large enough to create a large number of dislocations; on the other hand, in experimental observations, only isolated dislocations were observed in the nanocrystalline clusters, in contradiction to the models.”

In order to resolve the contradiction, the Technion researchers used advanced simulation tools that run on high-performance parallel computer located on campus. “The calculation is performed at the atomic level,” relates Dr. Dan Mordehai who today is a member of the Faculty of Mechanical Engineering at the Technion, but who was a post-doctoral fellow in Prof. Rabkin’s group when the research was conducted. “We describe the nanocrystals using the atoms that comprise them and the forces between these atoms, and thus, we actually allow the atoms to choose their preferred “path”. These calculations include several hundreds of thousands of atoms and we have to execute them on parallel computer – that is, execute the calculation on a number of computers simultaneously.”

The Technion researchers found, for all intents and purposes, that neither of the schools of thought described the process in its entirety. In their simulation they showed that when the nanocrystals approach each other, the force of their interaction rises to become as great as that which creates many dislocations (as predicted by the second school of thought). Nevertheless, during the adhering process between the nanocrystals, additional dislocations are created, which “repair” the defects, and by the end of the adhering process, they no longer have any dislocations, as observed during experiments.

Thus the new nanomechanical term, coined by the Technion researchers, “pseudo-elasticity” was born. This mechanism enables nanocrystals to retain their original shape, despite the forces acting upon them, which are large enough to overcome their own strength limit. This mechanism may have great importance in many additional fields in contact mechanics for each pair of bodies that gets within a few nanometers of each other.

Prof. David Srolovitz, who is the head of the Institute of High Performance Computing in Singapore, participated in this research.

Three submissions win at the Technion’s Energy Conservation Competition:

Three winning ways to conserve energy: generating energy by working out at the gym; checking real-time energy consumption; & exploiting Technion’s position on the slopes of the Carmel.

The three winners (sitting, right to left): Noam Berkovitz, Philip Auchman, and Doron Laor. Standing (right to left): Tal Goldberg (coordinator of the “Green Campus”), Dr. Avital Stein, Itzik Romano, and Beni Cohen, head of the Department for Energy Efficiency in the Israel Electric Company. 
I. Green dynamo – exploiting the potential difference in water flow;

II. Energy screen – displaying data about energy conservation;

III. Fitness club – exploiting energy generated by working out.
These are the three submissions that won the first-of-its-kind competition held at the Technion on the subject of energy conservation. Tens of proposals were submitted to the panel of judges headed by Technion President, Prof. Peretz Lavie, and comprising Technion researchers and representatives of the Israel Electric Company. Of the 13 submissions that made it to the final round, three won.
Green dynamo – The submission by student Philip Auchman, of the Faculty of Mechanical Engineering, won first prize. He proposed exploiting the Technion’s surplus water pressure, which is high thanks to the Technion’s position on the slopes of the Carmel Mountain. “By using a simple device, a type of turbine that penetrates the pipe and rotates a dynamo, we can create energy,” he explains. “Because of the steep slope on which the Technion is situated, wide use is made of pressure reducers, and in my opinion, we can exploit this pressure to generate energy.”
Noam Berkovitz, from the Technion’s Computerization and Information Systems Division, won second place with his proposal to place “energy screens” around the campus. These screens would display information about the real-time energy use in each building and even warn about energy over-consumption.
Doron Laor, a student in the Faculty of Mechanical Engineering, won third place. He proposed using the energy produced by users of the Technion’s fitness club to generate energy. “People in the fitness club burn calories and we can exploit their activities to generate energy,” he says. “For example, all the runners or walkers on the different apparatuses can generate energy by their activity, which can operate the air conditioners.”
Itzik Romano, the Technion’s electrical engineer, said that ten divisions in the institute had managed, over the past four years, to save over five million shekels worth of energy and additional faculties are set to join the Technion project to save energy. “The competition that we held is one more step in our efforts to save energy and increase awareness about saving,” he emphasizes.
The competition was held in cooperation with Tal Goldberg and the Technion’s “Green Campus” team, the Samuel Neaman Institute, and the Israel Electric Company.

SHANA TOVA! 10 Technion highlights of the year


Come share with us an insider’s look at some of the exciting projects that took place at Technion in the year תשע”א. It has been a year of new challenges with outstanding science and groundbreaking innovation. From outreach projects in Nepal, to a visit to the Technion alum enterprise striving to make Israel a “Better Place” by freeing it of oil dependence, each video rewards your time!





I. 100 Years of Israeli Science and Technology


Preparing for the Technion Cornerstone Centennial.
In April 1912 the cornerstone was laid for the first Jewish university in the Middle East, the Technikum later to be called Technion-Israel Institute of Technology.
The Technion opened its door for the first students in 1924 and the engineers and scientists educated there were instrumental in building the country.
Thank you to the Steven Spielberg Jewish Film Archives of the Hebrew University of Jerusalem and the World Zionist Organization for historical footage.

We look forward to sharing this 100 year legacy with you throughout 2012 at Technion and across the world.

Can we compress 100 years into 60 seconds? If we go for the essence of the miracle, yes. Check it out on the YouTube channel of the State of Israel here.

II. The science of the blood test.
A revolutionary approach to testing blood for cancer and other diseases where fast diagnosis saves lives. Prof. Arie Admon of the Smoler Proteomics Center in Technion’s Faculty of Biology discusses the simple, universal blood test under development.
 
III. Brainstormers active 24/7

Approximately 7 million people suffer from Parkinson’s and Alzheimer’s diseases in the United States alone. Prof. Moussa B.H. Youdim, Director of the Eve Topf and U.S. National Parkinson Foundation in Technion’s Rappaport Faculty of Medicine, develops drugs that restore neurons in the brain. Watch the full length clip here.
 
IV. Alumni strive for a Better Place
In December 2010 Technion International School of Engineering students made a visit to the Better Place Visitor’s Center in Israel to test drive the electric car and learn more about this exciting global venture. Technion alumnus Shai Agassi is the founder and chief executive of Better Place, the leading electric vehicle services provider. Agassi is focused on one of this century’s biggest challenges, moving the world from oil-based to sustainable transportation. Better Place is building the infrastructure and intelligent network to deliver a range of services to drivers, enable widespread adoption of electric vehicles, and optimize energy use.
 


V. Student YoYo innovations

What laws of science, physics and engineering are found in a yo-yo? In this year’s Dr. Bob’s TechnoBrain competition, supported by Dr. Robert Shillman in memory of Neev-Ya Durban, students met the challenge to design the longest yo-yo on earth. The mission: to build a YoYo that would bounce the highest after being dropped from a 100-foot high crane. Technion thanks Dr. Robert Shillman, Amdocs and Rafael for their generous support. This year’s contest took place on June 15, 2011 during the annual Board of Governors meeting.





VI. Breath-test for Cancer

Wouldn’t it be revolutionary if doctors could sniff out cancer? Prof. Hossam Haick of the Wolfson Faculty of Chemical Engineering is developing the Na-Nose — an artificial nose that will be able to detect cancer and other diseases at the early stages. The patient exhales into the device and with an array of nano sensors the non-invasive device will do its life saving work.



VII. Engineers Without Borders

Technion Prof. Mark Talesnick of the Faculty of Civil and Environmental Engineering and Prof. Bernard Amadei of the University of Colorado discuss Engineers Without Borders and Technion’s participation in this exciting international initiative.


VIII. Walk Tall

Argo Medical Technologies, established by Technion Electrical Engineering graduate Dr. Amit Goffer, develops and manufactures ReWalk™ the first commercially viable upright walking assistance tool. ReWalk enables paraplegics to stand, walk, climb stairs and drive. 
 

IX. Student Job Fair

Technion students and graduates are sought after by all the major companies in Israel. Twice a year they visit campus to recruit Technion graduates for full time work and students for part time positions. Fifty companies and thousands of students filled the center of the campus in June 2011.

X. A Decade since 9/11

Terrorism can strike anywhere at any time. In the decade since 9/11, scientists from Technion – Israel’s top Institute of technology, have been silently at work in mapping future threats and in developing the expert solutions to safeguard our world. In an age of advanced science and technology, counter-terrorism depends on advanced solutions from the world’s leading universities. At Technion, the application of excellence to affirm global home front security touches all fields, from advanced sensors to graduate-generated technology behind Israel Aerospace Industries’ Arrow — anti-ballistic missile system and Rafael’s Iron Dome – the protective shield to intercept rockets.




Israel an IP Superpower

It’s official: Israel an IP superpower

Israel Patent Office’s 2010 report, published for first time, reveals that 40% of its patent applications come from computer and electronics industries; more than one-third come from US. Compared to rest of world, Israel among top 15 countries in patent applications

The first annual report published Tuesday by The Israel Patent, Design and Trademarks Office reveals figures that boost Israel’simage as an intellectual property superpower.

In 2010 the Office received 7,266 new patent applications – a third of which were from US applicants which submitted 2,641 new patent applications in 2010. Over 30% of the applications were for patents in the fields of chemistry and more than 40% were from the computers and electronics industries.

Among the leading foreign applicants are Qualcomm, French pharmaceutical company F. Hoffman La-Roche and Microsoft. The Israeli applications come from academic tech transfer companies and from industrial companies. The most prominent applications came from companies such as Teva Pharmaceuticals, Plasan Sasa and Israel Aircraft Industry.

Academic technology transfer companies are in the lead with international applications as well, namely The Hebrew University, The Technion and The Weizmann Institute of Science, respectively, indicating the scope of intellectual property produced by Israel’s academia which inventors seek to protect.

In 2010, 2,293 patents were granted which reflects consistency of the ratio of new applications to the number of patents approved every year.

Israeli prominence is reflected by a comparison of these statistics to the rest of the world: Israel rated 16 in the number of new patent applications for 2009; 11 in the ratio of applications to its GDP in 1995-2007; and 14 in the ratio of applications to its population in 2007.

As regards to designs, the trend is reverse – over 70% of the applications are from local applicants whereas only 30% come from overseas.

2010 was a good year for the Office’s trademark division with 8,017 trademark applications of which 463 were international applications submitted in accordance with the Madrid Protocol in the last three months of 2010. Nearly 70% of the applications were submitted by foreign applicants.

Israel an IP Superpower

It’s official: Israel an IP superpower

Israel Patent Office’s 2010 report, published for first time, reveals that 40% of its patent applications come from computer and electronics industries; more than one-third come from US. Compared to rest of world, Israel among top 15 countries in patent applications

The first annual report published Tuesday by The Israel Patent, Design and Trademarks Office reveals figures that boost Israel’simage as an intellectual property superpower.

In 2010 the Office received 7,266 new patent applications – a third of which were from US applicants which submitted 2,641 new patent applications in 2010. Over 30% of the applications were for patents in the fields of chemistry and more than 40% were from the computers and electronics industries.

Among the leading foreign applicants are Qualcomm, French pharmaceutical company F. Hoffman La-Roche and Microsoft. The Israeli applications come from academic tech transfer companies and from industrial companies. The most prominent applications came from companies such as Teva Pharmaceuticals, Plasan Sasa and Israel Aircraft Industry.

Academic technology transfer companies are in the lead with international applications as well, namely The Hebrew University, The Technion and The Weizmann Institute of Science, respectively, indicating the scope of intellectual property produced by Israel’s academia which inventors seek to protect.

In 2010, 2,293 patents were granted which reflects consistency of the ratio of new applications to the number of patents approved every year.

Israeli prominence is reflected by a comparison of these statistics to the rest of the world: Israel rated 16 in the number of new patent applications for 2009; 11 in the ratio of applications to its GDP in 1995-2007; and 14 in the ratio of applications to its population in 2007.

As regards to designs, the trend is reverse – over 70% of the applications are from local applicants whereas only 30% come from overseas.

2010 was a good year for the Office’s trademark division with 8,017 trademark applications of which 463 were international applications submitted in accordance with the Madrid Protocol in the last three months of 2010. Nearly 70% of the applications were submitted by foreign applicants.

Technion NANO student leadership.

This month welcomes new leadership of the Technion’s Norman Seiden Multidisciplinary Graduate program in Nanoscience & Nanotechnology. Prof. Dror Seliktar of the Department of Biomedical Engineering.

http://portal.bm.technion.ac.il/SiteCollectionImages/dror.jpg
Dror Seliktar , Associate Professor
Prof. Seliktar replaces Prof. Yachin Cohen, who headed the dynamic interdisciplinary graduate NANO program since its inception six years ago, has now completed his duties with the Program. Watch Technion RBNI nano students at work in this video!

Prof. Dror Selitka is  CSO and Co-Founder of Regentis Biomaterials


Established in 2004, Regentis Biomaterials is a tissue repair company that is developing and commercializing innovative biodegradable hydrogels for the local repair of damaged cartilage and bone.
Our platform technology is a family of hydrogels called Gelrin™. These gels can be injected or applied to a specific local site and offer beneficial properties for the local repair of damaged tissue such as cartilage and bone.
The Gelrin™ technology offers off-the-shelf products that are designed to be suitable for both open surgery and minimally invasive procedures. An ideal solution for physicians and their patients, the products are easy to implant and have been shown to stimulate the regeneration of healthy cartilage and bone tissue.
Regentis’ first orthopedic product is GelrinC, a biodegradable hydrogel for articular cartilage regeneration. Additional pipeline products include GelrinB – a biodegradable hydrogel for bone regeneration; and GelrinA – a void filling matrix for aesthetic indications.

Peretz Lavie, president of the Technion: Fast reflexes

Influence on Israel’s economy: Technion President Prof. Peretz Lavie is ranked #35 by Ha’aretz national newspaper. 


By Lior Dattel, The MARKER.

Peretz Lavie - Moran Maayan - 05092011
Photo by Moran Maayan

The Technion headed by Prof. Peretz Lavie, a specialist on sleep, has extended its activities abroad in recent years. It has signed cooperation agreements with 116 universities in different parts of the world, and this year it inaugurated a research center for computer engineering that will be the largest of its kind in the Middle East.
Its activities are characterized by a rare flexibility in the Israeli academic world: Soon after natural gas deposits were discovered off the country’s coast, the Technion developed a study program at the master’s level to train engineers and other professionals in the field of natural gas and oil.

Expansion takes money and the friends of the Technion abroad have been helpful. Lavie has helped enlist donations. This year the Technion announced it was raising $30 million for he computer engineering center; it recently reported that it had raised donations to the tune of $60 million for various purposes. Only last year, the largest ever campaign for donations to the Technion, which lasted 13 years, came to an end, bringing in a total of some $1 billion.