Tag Archives: Technion

The Pull of Light – optics innovation from Technion.

Distinguished Prof. Mordechai (Moti) Segev,
Technion Faculty of Physics.

Developing a real, working tractor beam has regularly been an exercise in frustration: it often relies on brute force attempts to induce a magnetic link or an air pressure gap, either of which falls a bit short of science fiction-level elegance.

The Technion-Israel Institute of Technology’s Mordechai Segev has a theory that would use the subtler (though not entirely movie-like) concept of negative radiation pressure in light to move objects. By using materials that have a negative refraction index, where the light photons and their overall wave shape move in opposite directions, Segev wants to create a sweet spot where negative radiation pressure exists and an object caught in the middle can be pushed around. His early approach would use extremely thin crystals stacked in layers to manipulate the refraction.

As it’s theorized, the technology won’t be pulling in the Millennium Falcon anytime soon — the millimeters-wide layer intervals dictate the size of what can be pulled. Nonetheless, even the surgery-level tractor beams that Segev hopes will ultimately stem from upcoming tests would bring us much closer to the future that we’ve always wanted.

Negative radiation pressure in light could make some tractor beams real, we're already sucked in
Source: Optics Express

Read more about Distinguished Prof. Motti Segev at the Technion Book of Faces.

Spit it out! How nature joins up with rodents.

Technion researchers discover how the defensive chemicals of a fruit turn a seed predator into a quality seed disperser.

Researchers from the Technion Faculty of Biology have discovered how fruit chemistry alters animal behavior. The researchers found a chemical mechanism that encourages seed dispersal in the fruit of the desert plant ‘sweet mignonette’ or ‘taily weed’.

This mechanism contains stable, non-toxic substances called glucosinolates, which are found only in the fruit pulp and break down into toxic products when the seed, which contains the enzyme myrosinase, is damaged mechanically. Apparently, the compartmentalization of glucosinolates and myrosinase in the fruits of sweet mignonette affects the interaction between the plant and rodents that are known to be seed predators. One of the rodents examined, the common spiny mouse, was even found to be a quality dispenser of the sweet mignonette seeds. This is the first documentation of a chemical mechanism in fruits that encourages seed dispersal by mammals.

According to the directed deterrence hypothesis, defensive chemicals (secondary metabolites) in ripe fruits deter seed predators, but have no or little effect on seed dispersers. Indeed, there is some evidence that birds (seed dispersers) and mammals (seed predators) differ in their responses to defensive chemicals. However, this mechanism was only demonstrated based on differences at the class level, namely differences in vanilloid receptors found in mammals but not in birds.  

“Here we present the findings of physiological and behavioral experiments demonstrating the use of defensive chemicals of the mustard oil bomb to encourage broad-range, class-independent (e.g. mammals vs. birds) seed dispersal in sweet mignonette fruits, in order to force a behavioral change at an ecological timescale, converting rodents from seed predators to seed dispersers,”  writes researcher Michal Samuni-Blank, who was supervised by Profs. Zeev Arad of the Technion and Ido Izhaki of Haifa University.

“This change is achieved through the unique compartmentalization of the mustard oil bomb, which causes activation of the system only upon seed and pulp co-consumption. This ‘motivates’ seed dispersal which has led to the first ever documentation of a rodent dispersing seeds via seed spitting”.

The research findings demonstrate the power of fruits defensive chemicals to shift the animal-plant relationships from predation to mutualism, and supports the directed deterrence hypothesis at the intraspecific level, in addition to the interspecific level.

Jewelry ~ a whole new matter ~ Technion Nobel Laureate.

Private Collection: A Jewel for My Wife
Nobel Laureate 2011 Prof. Dan Shechtman

A JEWEL FOR MY WIFE

By Curator: Anat Har-gil

1972, Dayton, Ohio.  It all began innocently enough. Zippi, Dan’s wife, was busy in the evenings studying for a Master’s Degree in Sociology, and Dan Shechtman, a postdoctoral fellow, found himself studying stone polishing in the arts center during his free time.

Before long, five pairs of polished stones accumulated. Each pair, a different color. What would he do with them? He found himself attending a silver jewelry making course led by Mrs. Audrey Cray: “A very dear and special woman who taught me that esthetics is not an exact science. “Jewelry is created with feeling, love and patience,”

From that moment onwards, sensitively and delicately, Dan has been creating and designing jewelry. Jewelry for his wife: only for his wife.

The art of jewelry making became incorporated and condensed into the inherent knowledge he already possessed. Working with metal is familiar for Dan since he is a metallurgist. He understands metal; he handles it, in this case, to create his jewelry. The  enamel is sealed, at times melting in his hands until it becomes transparent. The metal expands and contracts. Together, enamel, metal and stone merge into a melting pot of
matter and spirit.

The scientific thinking behind his art is very powerful. Yet, at the same time, jewelry making is an excuse for him, a reason to be released from the clutches of the laboratory. The thinking is now visual in form and it begs awareness for its own existence.

Professional knowledge is translated into plastic values, and what really takes place is the transformation of his sketches and his technical ability into a beautiful creation.
Behind every design lies the story. Each piece of jewelry serves as an expression of emotion or the marking of an event. The process is fed, fertilized, and examined by “an audience of one” – his wife Zippi.

When this journey comes to end, it is not yet completed. A ceremony – heartfelt and modest then begins. The piece of jewelry is presented to Zippi as a surprise. Even though she is present before it is even made, she is not a partner in its making.

Dan Shechtman is a research professor in the Faculty of Materials Engineering at the Technion – Israel Institute of Technology. In the year 2011, he was awarded the Nobel Prize in Chemistry for his discovery of quasicrystals.

An exhibition of handcrafted jewelry created by Nobel Laureate Dan Shechtman is to be displayed on campus.Designed exclusively for his wife, Prof. Zipora Shechtman, the exhibition showcases 15 unique pieces ranging from earrings to bracelets with a single item — an Aztec-inspired silver belt buckle pictured bottom left — which Distinguished Prof. Shechtman made for himself. The exhibition, curated by Anat Har-Gil, will show June 10 to June 14, 2012, on the 4th floor of the Ullmann Teaching Center at Technion City in Haifa.

 

Jewelry ~ a whole new matter ~ Technion Nobel Laureate.

Private Collection: A Jewel for My Wife
Nobel Laureate 2011 Prof. Dan Shechtman

A JEWEL FOR MY WIFE

By Curator: Anat Har-gil

1972, Dayton, Ohio.  It all began innocently enough. Zippi, Dan’s wife, was busy in the evenings studying for a Master’s Degree in Sociology, and Dan Shechtman, a postdoctoral fellow, found himself studying stone polishing in the arts center during his free time.

Before long, five pairs of polished stones accumulated. Each pair, a different color. What would he do with them? He found himself attending a silver jewelry making course led by Mrs. Audrey Cray: “A very dear and special woman who taught me that esthetics is not an exact science. “Jewelry is created with feeling, love and patience,”

From that moment onwards, sensitively and delicately, Dan has been creating and designing jewelry. Jewelry for his wife: only for his wife.

The art of jewelry making became incorporated and condensed into the inherent knowledge he already possessed. Working with metal is familiar for Dan since he is a metallurgist. He understands metal; he handles it, in this case, to create his jewelry. The  enamel is sealed, at times melting in his hands until it becomes transparent. The metal expands and contracts. Together, enamel, metal and stone merge into a melting pot of
matter and spirit.

The scientific thinking behind his art is very powerful. Yet, at the same time, jewelry making is an excuse for him, a reason to be released from the clutches of the laboratory. The thinking is now visual in form and it begs awareness for its own existence.

Professional knowledge is translated into plastic values, and what really takes place is the transformation of his sketches and his technical ability into a beautiful creation.
Behind every design lies the story. Each piece of jewelry serves as an expression of emotion or the marking of an event. The process is fed, fertilized, and examined by “an audience of one” – his wife Zippi.

When this journey comes to end, it is not yet completed. A ceremony – heartfelt and modest then begins. The piece of jewelry is presented to Zippi as a surprise. Even though she is present before it is even made, she is not a partner in its making.

Dan Shechtman is a research professor in the Faculty of Materials Engineering at the Technion – Israel Institute of Technology. In the year 2011, he was awarded the Nobel Prize in Chemistry for his discovery of quasicrystals.

An exhibition of handcrafted jewelry created by Nobel Laureate Dan Shechtman is to be displayed on campus.Designed exclusively for his wife, Prof. Zipora Shechtman, the exhibition showcases 15 unique pieces ranging from earrings to bracelets with a single item — an Aztec-inspired silver belt buckle pictured bottom left — which Distinguished Prof. Shechtman made for himself. The exhibition, curated by Anat Har-Gil, will show June 10 to June 14, 2012, on the 4th floor of the Ullmann Teaching Center at Technion City in Haifa.

 

Physics research brings new strategies for brain tumor treatment.

File:PET-image.jpg

Modeling the demise of migrating brain tumor cells

Evolution of brain tumor cells under treatment reveal that it is the peripheral tumor cells that need to be targeted

An Israeli physicist has developed a theoretical model to simulate the evolution of highly proliferating brain tumour core cells subjected to treatment by alternating radio frequency electric field. The research, by Alexander Iomin from the Technion – Israel Institute of Technology Technion in Haifa, is about to be published in EPJ E¹. In another model, the author examines the possibility of enhancing the level of treatment by targeting the outer area of the tumour.
Iomin introduced a theoretical evaluation of the effect of a standard treatment known as tumour-treating-field (TTF) on the speed of development of a type of brain tumour called glioma. To do so, he adapted a well-established model — the so-called fractal comb model, which looks like the regularly spaced teeth of a comb — based on a mathematical approach called fractional calculus. This model is based on the hypothesis that TTF treatment had limited efficiency in the outer region and would only be effective on the inner part of the tumour, which is characterised by a higher proliferation rate of cancer cells.
By contrast, the peripheral part of the tumour is characterised by high migration and low proliferation rates of cancer cells. In his second model, the author considered glioma cancer as a composite of cancer cells and normal tissue cells. Each cell type exhibits a distinctive polarisation by an electric field, following a pattern similar to fractal geometry. He established a model reflecting the difference between the two types of cells and applied fractal calculus to their geometry. Iomin suggested that because of the fractal nature of cancer cells the TTF treatment might be enhanced at certain frequencies. As a result, the cancer cells’ plasma membrane permeability would irreversibly increase, which could lead to their demise. This approach may constitute an effective non-invasive method for treating brain cancer.
Article extracted from: EurekaAlert.

Physics research brings new strategies for brain tumor treatment.

File:PET-image.jpg

Modeling the demise of migrating brain tumor cells

Evolution of brain tumor cells under treatment reveal that it is the peripheral tumor cells that need to be targeted

An Israeli physicist has developed a theoretical model to simulate the evolution of highly proliferating brain tumour core cells subjected to treatment by alternating radio frequency electric field. The research, by Alexander Iomin from the Technion – Israel Institute of Technology Technion in Haifa, is about to be published in EPJ E¹. In another model, the author examines the possibility of enhancing the level of treatment by targeting the outer area of the tumour.
Iomin introduced a theoretical evaluation of the effect of a standard treatment known as tumour-treating-field (TTF) on the speed of development of a type of brain tumour called glioma. To do so, he adapted a well-established model — the so-called fractal comb model, which looks like the regularly spaced teeth of a comb — based on a mathematical approach called fractional calculus. This model is based on the hypothesis that TTF treatment had limited efficiency in the outer region and would only be effective on the inner part of the tumour, which is characterised by a higher proliferation rate of cancer cells.
By contrast, the peripheral part of the tumour is characterised by high migration and low proliferation rates of cancer cells. In his second model, the author considered glioma cancer as a composite of cancer cells and normal tissue cells. Each cell type exhibits a distinctive polarisation by an electric field, following a pattern similar to fractal geometry. He established a model reflecting the difference between the two types of cells and applied fractal calculus to their geometry. Iomin suggested that because of the fractal nature of cancer cells the TTF treatment might be enhanced at certain frequencies. As a result, the cancer cells’ plasma membrane permeability would irreversibly increase, which could lead to their demise. This approach may constitute an effective non-invasive method for treating brain cancer.
Article extracted from: EurekaAlert.

Parkinson’s in the genes? Technion isolates the 5 genes for early diagnosis.

3 June 2012

Technion Researchers Identify a Cluster of Five Genes in the Blood that Predict Parkinson’s Disease

Technion researchers from the Rappaport Faculty of Medicine have identified five genes that predict Parkinson’s disease, reports the scientific journal Molecular Neurodegeneration. The research was conducted by Dr. Silvia Mandel, Vice Director of the Eve Topf Center of Excellence for Neurodegenerative Diseases Research and Teaching, together with her colleagues Prof. Moussa Youdim (Technion), Prof. Judith Aharon (Rambam Medical Center), and Prof. Martin Rabey (Assaf HaRofeh Medical Center), as well as her colleagues from the Universities of Würzburg and Pisa.
“Currently, there is no blood test that can diagnose PD, making the detection of individuals at risk or at earliest stages of PD practically impossible. Instead it is identified by a clinical neurological examination based on findings suggestive of Parkinson’s disease. Finding biomarkers for Parkinson’s disease will help to capture those high-risk subjects before symptoms develop, a stage where prevention treatment efforts might be expected to have their greatest impact to slow disease progression”, says Dr. Silvia Mandel. “The first aim of our study was to assess whether a gene signature could be detected in blood from early Parkinson’s disease patients that could support the diagnosis of the disease”.
The examination was conducted on blood samples from 62 early stage Parkinson’s disease patients and 64 healthy age-matched controls. The selection of the genes and determination of their expression in the blood was based on previous research conducted by Drs. Silvia Mandel and Moussa Youdim on the brains of Parkinson’s disease patients, in which a group of genes was identified with defective expression compared to the brains of healthy people (control group). Five genes were found that are optimal predictors of Parkinson’s disease.
The predictive ability of the model was validated in an independent cohort of 30 patients at advanced stages of Parkinson’s disease, with 100% accuracy, which suggests a potential for the genetic signature to assess disease severity. Lastly, the model fully discriminated between Parkinson’s disease and Alzheimer’s disease.
“The findings strengthen the assumption that a five-gene panel in the blood allows to diagnose early stage Parkinson’s disease, with a possible diagnostic value for detection of the disease before the appearance of the characteristic motor symptoms”, say the Technion researchers. “The biomarker could assist in diagnosing individuals at presymptomatic stages of the disease (patients with depression, sleep disturbances or hyposmia (reduced ability to smell) or patients carrying genetic risk factors) who are good candidates for neuroprotective treatment. Such a biomarker will be of value in clinical trials for the identification of that subgroup of Parkinson’s disease patients that may respond favorably to therapies targeting the mechanisms reflected by the gene panel. All five genes play a role in the ubiquitin-proteasome system, whose involvement in the pathology of Parkinson’s disease has previously been demonstrated.
The Technion researchers believe that, in the future, the blood test may be combined with brain imaging and/or biomarkers in the spinal fluid or other peripheral tissues, as a gold standard not only for early diagnosis, but also for the differential diagnosis of Parkinson’s and motor disorders mimicking the disease.

Parkinson’s in the genes? Technion isolates the 5 genes for early diagnosis.

3 June 2012

Technion Researchers Identify a Cluster of Five Genes in the Blood that Predict Parkinson’s Disease

Technion researchers from the Rappaport Faculty of Medicine have identified five genes that predict Parkinson’s disease, reports the scientific journal Molecular Neurodegeneration. The research was conducted by Dr. Silvia Mandel, Vice Director of the Eve Topf Center of Excellence for Neurodegenerative Diseases Research and Teaching, together with her colleagues Prof. Moussa Youdim (Technion), Prof. Judith Aharon (Rambam Medical Center), and Prof. Martin Rabey (Assaf HaRofeh Medical Center), as well as her colleagues from the Universities of Würzburg and Pisa.
“Currently, there is no blood test that can diagnose PD, making the detection of individuals at risk or at earliest stages of PD practically impossible. Instead it is identified by a clinical neurological examination based on findings suggestive of Parkinson’s disease. Finding biomarkers for Parkinson’s disease will help to capture those high-risk subjects before symptoms develop, a stage where prevention treatment efforts might be expected to have their greatest impact to slow disease progression”, says Dr. Silvia Mandel. “The first aim of our study was to assess whether a gene signature could be detected in blood from early Parkinson’s disease patients that could support the diagnosis of the disease”.
The examination was conducted on blood samples from 62 early stage Parkinson’s disease patients and 64 healthy age-matched controls. The selection of the genes and determination of their expression in the blood was based on previous research conducted by Drs. Silvia Mandel and Moussa Youdim on the brains of Parkinson’s disease patients, in which a group of genes was identified with defective expression compared to the brains of healthy people (control group). Five genes were found that are optimal predictors of Parkinson’s disease.
The predictive ability of the model was validated in an independent cohort of 30 patients at advanced stages of Parkinson’s disease, with 100% accuracy, which suggests a potential for the genetic signature to assess disease severity. Lastly, the model fully discriminated between Parkinson’s disease and Alzheimer’s disease.
“The findings strengthen the assumption that a five-gene panel in the blood allows to diagnose early stage Parkinson’s disease, with a possible diagnostic value for detection of the disease before the appearance of the characteristic motor symptoms”, say the Technion researchers. “The biomarker could assist in diagnosing individuals at presymptomatic stages of the disease (patients with depression, sleep disturbances or hyposmia (reduced ability to smell) or patients carrying genetic risk factors) who are good candidates for neuroprotective treatment. Such a biomarker will be of value in clinical trials for the identification of that subgroup of Parkinson’s disease patients that may respond favorably to therapies targeting the mechanisms reflected by the gene panel. All five genes play a role in the ubiquitin-proteasome system, whose involvement in the pathology of Parkinson’s disease has previously been demonstrated.
The Technion researchers believe that, in the future, the blood test may be combined with brain imaging and/or biomarkers in the spinal fluid or other peripheral tissues, as a gold standard not only for early diagnosis, but also for the differential diagnosis of Parkinson’s and motor disorders mimicking the disease.

Imaging: a sub-wavelength revolution.

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Prof. Moti Segev, Faculty of Physics.

Technion Researchers Develop Computational Method for Improving the Resolution of Microscopes and Imaging Systems

Technion researchers have demonstrated an innovative method that substantially improves the resolution (the ability to distinguish between details) of microscopes. This was reported by the prestigious scientific journal Nature Materials. The method is based on innovative concepts, and scientists hail it as being a “breakthrough with the potential to change the world of microscopy, imaging systems, and other optical measurement systems”. The method is attracting great interest, both in the scientific world and in industry.

When you look through an optical microscope at an object with features (optical information) smaller than one half the wavelength of light – you necessarily see a blurred image”, explains Distinguished Prof. Mordechai (Moti) Segev of the Technion’s Department of Physics. “The reason for this is that the information about the structure of very small features does not propagate through space and thus does not reach the eye or the microscope camera. Today, a number of methods are used to achieve a resolution under one half of the wavelength of light, but they all require point-by-point scanning of the object. Hence, these methods may be used only for a static object, which does not change during the scan”.

Scientists have attempted for many years to find algorithms to reconstruct the sub-wavelength information lost between the object and the microscope camera. But thus far all such attempts were largely unsuccessful. The main reason is noise: random scattering of light (for example, from reflections off non-ideal surfaces), which is inevitable in optical systems, has thus far prevented algorithmic reconstruction of features smaller than one half the wavelength of light from measurements of the blurred image.

Now a team of Technion researchers presented a breakthrough algorithmic method for improving the resolution of microscopes to considerably under one half the wavelength of light. To a great extent, the project was successful thanks to the collaboration between several research groups from four different Technion faculties (the groups of Prof. Moti Segev and of Dr. Oren Cohen of the Department of Physics, Prof. Yonina Eldar of the Department of Electrical Engineering, Prof. Irad Yavneh and Dr. Michael Zibulevsky of the Computer Science Department, and Prof. Shy Shoham of the Department of Biomedical Engineering).

“The algorithmic method relies on finding the most suitable reconstruction that meets two criteria: the reconstructed high-resolution image must conform to the blurred image, and it must minimize of the number of the degrees of freedom”, explains Prof. Segev. “The second criterion has to do with understanding compact (sparse) representation of information and with the effect caused by noise in the measurement system. Random noise occupies all degrees of freedom, whereas information has some structure, hence it occupies a given number of degrees of freedom and never all of them. In many cases, there is some sort of a priori knowledge about the information. In principle, in such a case the information may be presented compactly, such that mathematically it is represented by a small number of projections onto basis functions that cover all the possibilities of spatial information. It is then said that the information is sparsely represented, and the number of degrees of freedom it occupies is small. In general, there are many cases where information can be represented compactly. A well known example is file compression using JPEG, a method of compact representation through projection onto a basis where the information in the file is represented sparsely (compactly)”.

This innovative concept of improving resolution in microscopy through representation of the image in the correct basis in which the image is sparse, was developed by Prof. Moti Segev of the Department of Physics and Prof. Yonina Eldar of the Department of Electrical Engineering, graduate students Snir Gazit and Yoav Shechtman and postdoctoral researcher Alex Szameit, currently a professor at the University of Jena, Germany. 

The idea was initially demonstrated in 2009. However, exhausting the full potential of the resolution improvement necessitated measuring the phase of the light reaching the microscope camera. Phase measurement requires interference-based methods (interferometric methods) which increase the complexity of the system substantially and limit the applications of this method.

About two years ago, Dr. Oren Cohen proposed adding an important layer to the algorithm, which in effect replaces the need for phase measurement, and to thus obtain image reconstruction at a higher resolution than one half the wavelength of light, through intensity measurement only (using a regular camera). In fact, Dr. Cohen proposed that two research directions be combined – Profs. Segev and Eldar’s idea of sub-wavelength imaging and “lensless imaging”, in which images are algorithmically (computationally) reconstructed from measurements of the intensity of the light at a very far distance from the image. This area – of lensless imaging – has recently become an extremely important field of science. On completion of the construction of three short pulse X-ray lasers (in the USA, Germany and Japan) at a cost of one billion dollars per laser, researchers intend to use lensless imaging to measure the structure of hundreds of thousands of single molecules (molecules that cannot be assembled into a crystallized structure). Understanding the structure of these molecules will pave the way for chemists, biologists and doctors to understand many biological processes at the molecular level. Until now, the resolution of all “lensless imaging” methods has been limited to features bigger than a wavelength. However, the methods developed by the Technion researchers could bring about a revolutionary improvement of the entire “lensless imaging” field, and allow measurement of dynamically changing molecules.

The Technion research team has demonstrated in experiments the reconstruction of details at least five times smaller than the wavelength of light, in a single-shot measurement of the light intensity at the focal plane of the microscope lens. The research work was published in the prestigious journal Nature Materials. The majority of the research work was done by postdoctoral researcher Alex Szameit and graduate students Yoav Shechtman and Eli Osherovich. The experiments, conducted by Alex Szameit and Hod Dana (graduate student at the Department of Biomedical Engineering), demonstrated reconstructions of objects with optical features 100 nanometers in size using radiation with a wavelength of 530 nanometers. In comparison, without using the new method, the resolution of this microscope is limited to features bigger than 300 nanometers.

As described above, the main part of the research is the development of the algorithm for the reconstruction of missing information: (a) reconstruction of the phase of light measured by the camera and (b) reconstruction of the part of the optical information which never reached the camera (information on features smaller than one half the wavelength of light). The initial algorithm, developed by Elad Bullkich, an undergraduate student at the time the research was conducted, and Yoav Shechtman, was based on performing the phase reconstruction algorithm followed by the algorithm for the reconstruction of sub-wavelength information. Some time later, Eli Osherovich developed a far better algorithm that reconstructs both types of “missing information” concurrently, thereby substantially increasing performance and allowing handling a wide range of images.

Technion researchers are now working on the development of similar methods for improving the resolution of other measurement systems. For example, graduate student Pavel Sidorenko has recently demonstrated breaking the resolution barrier of spectroscopic resolution: he has reconstructed spectral information at a higher resolution than the fundamental limit on spectroscopy (the time duration a photon spends in the measuring instrument). The researchers hope that these developments will lead to the improvement of spectral systems used, as an example, for the measurement of pollutants in the air of in water, detection of explosives, etc.

Imaging: a sub-wavelength revolution.

You may also like:

Prof. Moti Segev, Faculty of Physics.

Technion Researchers Develop Computational Method for Improving the Resolution of Microscopes and Imaging Systems

Technion researchers have demonstrated an innovative method that substantially improves the resolution (the ability to distinguish between details) of microscopes. This was reported by the prestigious scientific journal Nature Materials. The method is based on innovative concepts, and scientists hail it as being a “breakthrough with the potential to change the world of microscopy, imaging systems, and other optical measurement systems”. The method is attracting great interest, both in the scientific world and in industry.

When you look through an optical microscope at an object with features (optical information) smaller than one half the wavelength of light – you necessarily see a blurred image”, explains Distinguished Prof. Mordechai (Moti) Segev of the Technion’s Department of Physics. “The reason for this is that the information about the structure of very small features does not propagate through space and thus does not reach the eye or the microscope camera. Today, a number of methods are used to achieve a resolution under one half of the wavelength of light, but they all require point-by-point scanning of the object. Hence, these methods may be used only for a static object, which does not change during the scan”.

Scientists have attempted for many years to find algorithms to reconstruct the sub-wavelength information lost between the object and the microscope camera. But thus far all such attempts were largely unsuccessful. The main reason is noise: random scattering of light (for example, from reflections off non-ideal surfaces), which is inevitable in optical systems, has thus far prevented algorithmic reconstruction of features smaller than one half the wavelength of light from measurements of the blurred image.

Now a team of Technion researchers presented a breakthrough algorithmic method for improving the resolution of microscopes to considerably under one half the wavelength of light. To a great extent, the project was successful thanks to the collaboration between several research groups from four different Technion faculties (the groups of Prof. Moti Segev and of Dr. Oren Cohen of the Department of Physics, Prof. Yonina Eldar of the Department of Electrical Engineering, Prof. Irad Yavneh and Dr. Michael Zibulevsky of the Computer Science Department, and Prof. Shy Shoham of the Department of Biomedical Engineering).

“The algorithmic method relies on finding the most suitable reconstruction that meets two criteria: the reconstructed high-resolution image must conform to the blurred image, and it must minimize of the number of the degrees of freedom”, explains Prof. Segev. “The second criterion has to do with understanding compact (sparse) representation of information and with the effect caused by noise in the measurement system. Random noise occupies all degrees of freedom, whereas information has some structure, hence it occupies a given number of degrees of freedom and never all of them. In many cases, there is some sort of a priori knowledge about the information. In principle, in such a case the information may be presented compactly, such that mathematically it is represented by a small number of projections onto basis functions that cover all the possibilities of spatial information. It is then said that the information is sparsely represented, and the number of degrees of freedom it occupies is small. In general, there are many cases where information can be represented compactly. A well known example is file compression using JPEG, a method of compact representation through projection onto a basis where the information in the file is represented sparsely (compactly)”.

This innovative concept of improving resolution in microscopy through representation of the image in the correct basis in which the image is sparse, was developed by Prof. Moti Segev of the Department of Physics and Prof. Yonina Eldar of the Department of Electrical Engineering, graduate students Snir Gazit and Yoav Shechtman and postdoctoral researcher Alex Szameit, currently a professor at the University of Jena, Germany. 

The idea was initially demonstrated in 2009. However, exhausting the full potential of the resolution improvement necessitated measuring the phase of the light reaching the microscope camera. Phase measurement requires interference-based methods (interferometric methods) which increase the complexity of the system substantially and limit the applications of this method.

About two years ago, Dr. Oren Cohen proposed adding an important layer to the algorithm, which in effect replaces the need for phase measurement, and to thus obtain image reconstruction at a higher resolution than one half the wavelength of light, through intensity measurement only (using a regular camera). In fact, Dr. Cohen proposed that two research directions be combined – Profs. Segev and Eldar’s idea of sub-wavelength imaging and “lensless imaging”, in which images are algorithmically (computationally) reconstructed from measurements of the intensity of the light at a very far distance from the image. This area – of lensless imaging – has recently become an extremely important field of science. On completion of the construction of three short pulse X-ray lasers (in the USA, Germany and Japan) at a cost of one billion dollars per laser, researchers intend to use lensless imaging to measure the structure of hundreds of thousands of single molecules (molecules that cannot be assembled into a crystallized structure). Understanding the structure of these molecules will pave the way for chemists, biologists and doctors to understand many biological processes at the molecular level. Until now, the resolution of all “lensless imaging” methods has been limited to features bigger than a wavelength. However, the methods developed by the Technion researchers could bring about a revolutionary improvement of the entire “lensless imaging” field, and allow measurement of dynamically changing molecules.

The Technion research team has demonstrated in experiments the reconstruction of details at least five times smaller than the wavelength of light, in a single-shot measurement of the light intensity at the focal plane of the microscope lens. The research work was published in the prestigious journal Nature Materials. The majority of the research work was done by postdoctoral researcher Alex Szameit and graduate students Yoav Shechtman and Eli Osherovich. The experiments, conducted by Alex Szameit and Hod Dana (graduate student at the Department of Biomedical Engineering), demonstrated reconstructions of objects with optical features 100 nanometers in size using radiation with a wavelength of 530 nanometers. In comparison, without using the new method, the resolution of this microscope is limited to features bigger than 300 nanometers.

As described above, the main part of the research is the development of the algorithm for the reconstruction of missing information: (a) reconstruction of the phase of light measured by the camera and (b) reconstruction of the part of the optical information which never reached the camera (information on features smaller than one half the wavelength of light). The initial algorithm, developed by Elad Bullkich, an undergraduate student at the time the research was conducted, and Yoav Shechtman, was based on performing the phase reconstruction algorithm followed by the algorithm for the reconstruction of sub-wavelength information. Some time later, Eli Osherovich developed a far better algorithm that reconstructs both types of “missing information” concurrently, thereby substantially increasing performance and allowing handling a wide range of images.

Technion researchers are now working on the development of similar methods for improving the resolution of other measurement systems. For example, graduate student Pavel Sidorenko has recently demonstrated breaking the resolution barrier of spectroscopic resolution: he has reconstructed spectral information at a higher resolution than the fundamental limit on spectroscopy (the time duration a photon spends in the measuring instrument). The researchers hope that these developments will lead to the improvement of spectral systems used, as an example, for the measurement of pollutants in the air of in water, detection of explosives, etc.