Sunday, June 2, 2013

New Graphene Sensor for more sensitive camera

Recently scientists at Nanyang Technological University invented a new camera sensor which could revolutionize current camera market by its ability to take clear photos in dim conditions.
The new sensor made from graphene, is believed to be the first to be able to detect broad spectrum light, from the visible to mid-infrared, with high photoresponse or sensitivity. This means it is suitable for use in all types of cameras, including infrared cameras, traffic speed cameras, satellite imaging and more.
Not only is the graphene sensor 1,000 times more sensitive to light than current imaging sensors found in today's cameras, it also uses 10 times less energy as it operates at lower voltages. When mass produced, graphene sensors are estimated to cost at least five times cheaper due to its high electrical conductivity among other properties such as durability and flexibility.
This sensor could have great impact not only on the consumer imaging industry, but also in satellite imaging and communication industries, as well as the mid-infrared applications, While designing this sensor, current manufacturing practices have been kept in mind. This means the industry can in principle continue producing camera sensors using the CMOS (complementary metal-oxide-semiconductor) process, which is the prevailing technology used by the majority of factories in the electronics industry. Therefore manufacturers can easily replace the current base material of photo sensors with our new nano-structured graphene material. Cost of manufacturing imaging sensors will fall, which eventually leads to cheaper cameras with longer battery life, if this is adopted by industry.
Researcher came up with an innovative idea to create nanostructures on graphene which will trap light-generated electron particles for a much longer time, resulting in a much stronger electric signal. Such electric signals can then be processed into an image, such as a photograph captured by a digital camera. The trapped electrons is the key to achieving high photoresponse in graphene, which makes it far more effective than the normal CMOS or CCD (charge-coupled device) image sensors. Essentially, the stronger the electric signals generated, the clearer and sharper the photos. The performance of graphene sensor can be further improved through nanostructure engineering of graphene.

Monday, April 1, 2013

Myths about toxic Nanosilver busted



According to Finnish-Estonian joint research with data obtained on two crustacean species, there is apparently no reason to consider silver nanoparticles more dangerous for aquatic ecosystems than silver ions. The results were reported in the journal Environmental Science and Pollution Research late last year.
Part of the magic of nano-science is that on the scale of a billionth of a metre, matter and materials behave in ways that are not yet known. It is also not very clear what types of effects the nano version of the parent matter will have on its environment.
Due to the fact that silver in nanoparticle form is bactericidal and also fungicidal and also prevents the reproduction of those organisms, it is now used in various consumer goods ranging from wound dressing products to sportswear, says Jukka Niskanen from the Laboratory of Polymer Chemistry at the University of Helsinki, Finland.
While the usefulness of silver has been established, the debate over the toxicity mechanisms of its various forms to microorganisms, but also to non-target species continues. Anne Kahru, Head of the Laboratory of Environmental Toxicology at the National Institute of Chemical Physics and Biophysics, Estonia, highlights on a new field: nanoecotoxicology.
So far, little is known about the environmental effects of silver nanoparticles and their toxicity to aquatic organisms. A joint study from the University of Helsinki and the National Institute of Chemical Physics and Biophysics, Estonia of two types of silver nanoparticles to aquatic crustaceans Daphnia magna and Thamnocephalus platyurus , shows that silver nanoparticles are apparently no more hazardous to aquatic ecosystems than a water-soluble silver salt. The study compared the ecotoxicity of silver nanoparticles and a water-soluble silver salt.
The conclusion was that the environmental risks caused by silver nanoparticles are seemingly not higher than those caused by a silver salt. However, more research is required to reach a clear understanding of the safety of silver-containing particles.
Indeed, silver nanoparticles were found to be ten times less toxic than the soluble silver nitrate -- a soluble silver salt used for the comparison.
To explain this phenomenon, the researchers refer to the variance in the bioavailability of silver to crustaceans in different tested media.
It has been observed that the inorganic and organic compounds dissolved in natural waters (such as humus), water hardness and sulfides have a definite impact on the bioavailability of silver. Due to this, the toxicity of both types of tested nanoparticles and the silver nitrate measured in the course of the study was lower in natural water than in artificial fresh water.
The toxicity of silver nanoparticles and silver ions was studied using two aquatic crustaceans, a water flea (Daphnia magna) and a fairy shrimp (Thamnocephalus platyurus). Commercially available protein-stabilised particles and particles coated with a water-soluble, non-toxic polymer, specifically synthesised for the purpose, were used in the study. First, the polymers were produced utilising a controlled radical polymerisation method. Synthetic polymer-grafted silver particles were then produced by attaching the water-soluble polymer to the surface of the silver with a sulfur bond.
It was previously known from other studies and research results that silver changes the functioning of proteins and enzymes. It has also been shown that silver ions can prevent the replication of DNA. Concerning silver nanoparticles, tests conducted on various species of bacteria and fungi have indicated that their toxicity varies. For example, gram-negative bacteria such as Escherichia coli are more sensitive to silver nanoparticles than gram-positive ones (such as Staphylococcus aureus). The difference in sensitivity is caused by the structural differences of the cell membranes of the bacteria. The cellular toxicity of silver nanoparticles in mammals has been studied as well. It has been suggested that silver nanoparticles enter cells via endocytosis and then function in the same manner as in bacterial cells, damaging DNA and hindering cell respiration. Electron microscope studies have shown that human skin is permeable to silver nanoparticles and that the permeability of damaged skin is up to four times higher than that of healthy skin.

Monday, March 4, 2013

Self healing iPhone!

Nissan has developed a "self-healing" iPhone case that erases scratches.

Scratch Shield paint developed by Nissan can repair small scratches on a surface in a few hours.
Made from polyrotaxane, the chemical structure of the paint enables it to react to small chips and fill in the gaps.
It's currently used on the Nissan Murano, 370Z, and X-Trail, but the auto manufacturer has found a much larger market for its smart paint in iPhones.

Nissan is testing its Scratch Shield iPhone case with beta customers and some journalists, although this automotive writer was left out of the loop.
Its iPhone case is made from ABS plastic to create a tight and rigid case, and its coated with Scratch Shield paint.
 
 
 


 

Monday, February 18, 2013

Material That Slows Light Opens New Possibilities in Solar Energy

University at Buffalo engineers have created a more efficient way to catch rainbows, an advancement in photonics that could lead to technological breakthroughs in solar energy, stealth technology and other areas of research.
They developed a hyperbolic metamaterial waveguide, which is an advanced microchip made of alternate ultra-thin films of metal and semiconductors and insulators. The waveguide halts and ultimately absorbs each frequency of light, at slightly different places in a vertical direction, to catch series of wavelengths.
Electromagnetic absorbers have been studied for many years, especially for military radar systems. Right now, researchers are developing compact light absorbers based on optically thick semiconductors or carbon nanotubes. However, it is still challenging to realize the perfect absorber in ultra-thin films with tunable absorption band.
 Ultra-thin films are developed that will slow the light and therefore allow much more efficient absorption. Light is made of photons; because they move extremely fast are difficult to control. In their initial attempts to slow light, researchers relied upon cryogenic gases. But because cryogenic gases are very cold, this process is not industrially feasible.
Earlier researchers made nano-scale-sized grooves in metallic surfaces at different depths, which altered the optical properties of the metal. While the grooves worked, they had limitations; the energy of the incident light cannot be transferred onto the metal surface efficiently, which hindered its use for practical applications. The hyperbolic metamaterial waveguide solves that problem because it is a large area of patterned film that can collect the incident light efficiently. It is referred to as an artificial medium with subwavelength features whose frequency surface is hyperboloid, which allows it to capture a wide range of wavelengths in different frequencies including visible, near-infrared, mid-infrared, terahertz and microwaves.
It could lead to advancements in an array of fields. For example, in electronics there is a phenomenon known as crosstalk, in which a signal transmitted on one circuit or channel creates an undesired effect in another circuit or channel. The on-chip absorber could potentially prevent this.
The on-chip absorber may also be applied to solar panels and other energy-harvesting devices. It could be especially useful in mid-infrared spectral regions as thermal absorber for devices that recycle heat after sundown.
Technology such as the Stealth bomber involves materials that make planes, ships and other devices invisible to radar, infrared, sonar and other detection methods. Because the on-chip absorber has the potential to absorb different wavelengths at a multitude of frequencies, it could be useful as a stealth coating material.
 
 

Wednesday, January 23, 2013

Carbon Atom for Ultra-Small Energy-Efficient Electronic Devices

A team of scientists from Tyndall National Institute at University College Cork and the National University of Singapore have designed and fabricated ultra-small devices for energy-efficient electronics. By finding out how molecules behave in these devices, a ten-fold increase in switching efficiency was obtained by changing just one carbon atom. These devices could provide new ways to combat overheating in mobile phones and laptops, and could also aid in electrical stimulation of tissue repair for wound healing.
 Scientists opined that these molecules are very useful because they allow current to flow through them when switched ON and block current flow when switched OFF. The results of the study show that simply adding one extra carbon is sufficient to improve the device performance by more than a factor of ten. Atom-level computer simulations showed how molecules with an odd number of carbon atoms stand straighter than molecules with an even number of carbon atoms. This allows them to pack together more closely. Tightly-packed assemblies of these molecules were formed on metal electrode surfaces and were found to be remarkably free of defects. These high quality devices can suppress leakage currents and so operate efficiently and reliably. The device can be cleanly switched on and off purely on the basis of the charge and shape of the molecules, just like in the biological nanomachines that regulate photosynthesis, cell division and tissue growth.

Modern electronic devices such as telephones and tablets in manufacture today rely on tiny switches approaching molecular sizes. This provides new challenges for electronics but opens up exciting opportunities for blending molecular properties to be used to advantage. This study is an exciting new avenue to exploit molecular design to achieve new ways to perform information processing. A key enabling feature for nanoscale electronics will be the ability to use molecules as rectifiers and switches. By demonstrating the rational design of molecules that rectify current with a large and highly-reproducible ON/OFF ratio, the study provides a key advance towards the creation of technologically viable ultra-small device components. Fifty thousand of the rectifier molecules strung end to end would fit across the diameter of a human hair. Advances in computing, synthesis and characterisation means scientists can now understand and control material at the scale of atoms and molecules.

The combined experiments and simulations show for the first time that minute improvements in molecule orientation and packing trigger changes in Van-der Waals forces that are sufficiently large to dramatically improve the performance of electronic devices. These van der Waals forces are the weakest of all intermolecular forces and only become significant when summed over large areas. Hence, up until now, the majority of research into ultra-small devices has used stronger pi-pi interactions to stick molecules together, and has ignored the much weaker Van-der Waals interactions. The present study shows, how Van-der Waals effects, which are present in every conceivable molecular scale device, can be tuned to optimise the performance of the device.
The devices are based on molecules that act as diodes by allowing current to pass through them when operated at forward bias and blocking current when the bias is reversed. Molecular rectifiers were first proposed back in 1974, and advances in scientific computing have allowed molecular
level design to be used over the past decade to develop new organic materials that provide better electrical responses. However, the relative importance of the interactions between the molecules, the nature of the molecule-metal contact and the influence of environmental effects have been questioned. This new research demonstrates that dramatic improvements in device performance may be achieved by controlling the van der Waals forces that pack the molecules together. Simply changing the number of carbon atoms by one provides significantly more stable and more reproducible devices that exhibit an order of magnitude improvement in ON/OFF ratio. The research findings demonstrate the feasibility of boosting device performances by creating tighter seals between molecules.

Monday, January 21, 2013

“Antenna” like InP nanowires for high solar efficiency

In a recent study, researchers from Lund University in Sweden have shown how nanowires could pave the way for more efficient and cheaper solar cells. This finding first shows that it is possible to use nanowires to manufacture solar cells.

Research on solar cell nanowires is on the rise globally. Until now the unattained dream figure was ten per cent efficiency; but now scientists are able to report an efficiency of 13.8 per cent.

The nanowires are made of the semiconductor material indium phosphide and work like antennae that absorb sunlight and generate power. The nanowires are assembled on surfaces of one square millimetre which can hold four million nanowires. A nanowire solar cell can produce an effect per active surface unit several times greater than today's silicon cells.

Nanowire solar cells have not yet made it beyond the laboratory, but the plan is that the technology could be used in large solar power plants in sunny regions.

The Lund researchers have now managed to identify the ideal diameter of the nanowires and how to synthesize them.

The right size is essential for the nanowires to absorb as many photons as possible. If they are just a few tenths of a nanometre, their function is significantly impaired. The silicon solar cells that are used to supply electricity for domestic use are relatively cheap, but inefficient because they are only able to utilise a limited part of the effect of the sunlight. The reason is that one single material can only absorb part of the spectrum of the light.

Research carried out alongside that on nanowire technology therefore aims to combine different types of semiconductor materials to make efficient use of a broader part of the solar spectrum. The disadvantage of this is that they become extremely expensive and can therefore only be used in applications such as on satellites and military planes.

However, this is not the case with nanowires. Because of their small dimensions, the same sort of material combinations can be created with much less effort, which offers higher efficiency at a low cost. The process is also less complicated. In this study, the researchers have shown that the nanowires can generate power at the same level as a thin film of the same material, even if they only cover around 10 per cent of the surface rather than 100 per cent.
 
For further studies:

Sunday, November 18, 2012

Excellent Strategy for Fingerprint Identification using Gold nanoparticles

Identifying fingerprints on paper is a commonly used method in police forensic work, but unfortunately it is not easy to make those fingerprints visible. Now, scientists at the Hebrew University of Jerusalem have developed a new approach for making such fingerprints more readily readable.

The new method, created by a team headed by Prof. Yossi Almog and Prof. Daniel Mandler of the Institute of Chemistry at the Hebrew University, uses an innovative chemical process to produce a negative of the fingerprint image rather than the positive image produced under current methods. Unlike the latter, the Hebrew University-developed process is nearly independent of the composition of the sweat residue left behind on the paper.

In many criminal investigations, paper evidence plays an important role, and it is useful to know who has handled such documents as checks, paper currency, notes, etc. Studies have shown that less than half of the fingerprints on paper items can be made sufficiently visible to enable their identification. The main reason for this seems to be the highly variable composition of the sweat left behind on the paper.

The new procedure developed at the Hebrew University avoids these problems. It involves an inversion of an established method in which gold nanoparticles are first deposited onto the invisible fingerprints, followed by elemental silver, similar to the development of a black and white photograph.

 In the conventional technique, the gold particles get stuck to the amino acid components of the sweat in the fingerprints, and then silver is deposited onto the gold. The result is quite often low-contrast impressions of the fingerprints. In the new method, the gold nanoparticles stick directly to the paper surface, but not the sweat. This technique utilizes the sebum from the fingerprints as a medium to avoid this interference. (Sebum is an oily substance secreted by the sebaceous glands that helps prevent hair and skin from drying out.) Treatment with a developer containing silver then turns the areas with gold on them black, resulting in a clear, negative image of the fingerprint.

Since the method relies only on the fatty components in the fingerprints, the sweaty aspects play no role in the imaging process This technique also promises to alleviate another problem; for example if paper has become wet, it has previously been difficult to detect fingerprints because the amino acids in the sweat, which are the primary substrate for current chemical enhancement reactions, are dissolved and washed away by water, whereas the fatty components are barely affected. Thus, the avoidance of the sweat aspect provides a further enhancement for police laboratory.

Emerging idea of cooling of nanoscale Computer chips by Crystals


Researchers at the Carnegie Institution have discovered a new efficient way to pump heat using crystals. The crystals can pump or extract heat, even on the nanoscale, so they could be used on computer chips to prevent overheating or even meltdown, which is currently a major limit to higher computer speeds.

Researchers at the University of Chicago performed the preliminary simulations on ferroelectric crystals materials that have electrical polarization in the absence of an electric field. The electrical polarization can be reversed by applying an external electrical field. The scientists found that the introduction of an electric field causes a giant temperature change in the material, dubbed the electrocaloric effect (a phenomenon in which a material shows a reversible temperature change under an applied electric field), far above a temperature to a so-called paraelectric state.

The electrocaloric effect pumps heat through changing temperature by way of an applied electric field. The effect has been known since the 1930s, but has not been exploited because people were using materials with high transition temperatures. So low transition temperature materials are preferred, as in that way, the effect is larger if the ambient temperature is well above the transition temperature,

Ferroelectrics become paraelectric, that is, have no polarization under zero electric field above their transition temperature, which is the temperature at which a material changes its state from ferroelectric to paraelectric.
 
Scientists used atomic-scale molecular dynamics simulations, where they followed the behavior of atoms in the ferroelectric lithium niobate as functions of temperature and an electrical field.

Vortex Beams opens new possibilities for electron microscopy


Vortex beams render completely new possibilities for electron microscopy. A method of producing extremely intense vortex beams has been discovered at the Vienna University of Technology (TU Vienna).

Nowadays, electron microscopes are an essential tool, especially in the field of materials science. At TU Vienna, electron beams are being created that possess an inner rotation; these vortex beams cannot only be used to display objects, but to investigate material-specific properties with minute precision. A new breakthrough in research now allows scientists to produce much more intense vortex beams than ever before.

In a tornado, the individual air particles do not necessarily rotate on their own axis, but the air suction overall creates a powerful rotation. The rotating electron beams that have been generated at TU Vienna behave in a very similar manner. Vortex beams can only be explained in terms of quantum physics: the electrons behave like a wave, and this quantum wave can rotate like a tornado or a water current behind a ship's propeller.

After the vortex beam gains angular momentum, it can also transfer this angular momentum to the object that it collides. The angular momentum of the electrons in a solid object is closely linked to its magnetic properties. For materials science it is therefore a huge advantage to be able to make statements regarding angular momentum conditions based on these new electron beams.

Peter Schattschneider and Michael Stöger-Pollach (USTEM, TU Vienna) have been working together with a research group from Antwerp on creating the most intense, clean and controllable vortex beams possible in a transmission electron microscope. The first successes were achieved two years ago: at the time, the electron beam was shot through a minuscule grid mask, whereby it split into three partial beams: one turning right, one turning left and one beam that did not rotate.

Now, a new, much more powerful method has been developed: researchers use a screen, half of which is covered by a layer of silicon nitride. This layer is so thin that the electrons can penetrate it with hardly any absorption, however they can be suitably phase-shifted. After focusing using a specially adapted astigmatic lens, an individual vortex beam is obtained.
 
More exotic applications of vortex beams are also conceivable: in principle, it is possible to set all kinds of objects in rotation, even individual molecules using these beams, which possess angular momentum. Vortex beams could therefore also open new doors in nanotechnology.

Thursday, September 6, 2012

Phosphor removal from nano iron

A professor at Michigan State University is part of a team developing a new method of removing phosphorus from wastewater; a problem seriously affecting lakes and streams across the world.

Phosphorus is part of all food as well as is in items such as detergents and fertilizer and remains a critical problem as it is always present in human and animal wastes.
Discharge from human and industrial wastewater and runoff into lakes and streams can cause eutrophication, making the water unsuitable for recreational purposes and reducing fish populations, as well as causing the growth of toxic algae.
Researchers have figured out and tested over the past 10 years is how to produce a media, enhanced with nanoparticles composed of iron, that can more efficiently remove larger amounts of phosphorus from water.
Phosphorus that is dissolved in wastewater, like sugar in water, is hard to remove. A nano-media made with waste iron can efficiently absorb it, making it a solid that can be easily and efficiently removed and recovered for beneficial reuse. Their method of phosphorus retrieval is much more cost effective than processing phosphate rock. Research suggests that it is significantly cheaper to recover phosphorus this way.

Sunday, September 2, 2012

Molybdenum disulfide (MoS2): New nanomaterial with several advantages

The discovery of graphene, a material just one atom thick and possessing exceptional strength and other novel properties, started an avalanche of research around its use for everything from electronics to optics to structural materials. But new research suggests that was just the beginning: A whole family of two-dimensional materials may open up even broader possibilities for applications that could change many aspects of modern life.
The latest new material, molybdenum disulfide (MoS2) was first described just a year ago by researchers in Switzerland. But in that year, researchers at MIT who struggled for several years to build electronic circuits out of graphene with very limited results (have already succeeded in making a variety of electronic components from MoS2. They say the material could help usher in radically new products, from whole walls that glow to clothing with embedded electronics to glasses with built-in display screens.
 Researchers think graphene and MoS2 are just the beginning of a new realm of research on two-dimensional materials. Like graphene, itself a 2-D form of graphite, molybdenum disulfide has been used for many years as an industrial lubricant. But it had never been seen as a 2-D platform for electronic devices until last year, when scientists at the Swiss university produced a transistor on the material.
 Then MIT researchers found a good way to make large sheets of the material using a chemical vapor deposition process. As there are lots of hindrance in making electronic products out of graphene due to lack of bandgap, MoS2 just naturally comes with large band gap.
 MoS2 is widely produced as a lubricant and as others are working on making it into large sheets, scaling up production of the material for practical uses should be much easier than with other new materials. People are able to fabricate a variety of basic electronic devices on the material: an inverter, which switches an input voltage to its opposite; a NAND gate, a basic logic element that can be combined to carry out almost any kind of logic operation; a memory device, one of the key components of all computational devices; and a more complex circuit called a ring oscillator, made up of 12 interconnected transistors, which can produce a precisely tuned wave output.
One potential application of the new material is large-screen displays such as television sets and computer monitors, where a separate transistor controls each pixel of the display. Because the material is just one molecule thick, unlike the highly purified silicon that is used for conventional transistors and must be millions of atoms thick, even a very large display would use only an infinitesimal quantity of the raw materials. This could potentially reduce cost and weight and improve energy efficiency.
Further reading:
 
In the future, it could also enable entirely new kinds of devices. The material could be used, in combination with other 2-D materials, to make light-emitting devices. Instead of producing a point source of light from one bulb, an entire wall could be made to glow, producing softer, less glaring light. Similarly, the antenna and other circuitry of a cellphone might be woven into fabric, providing a much more sensitive antenna that needs less power and could be incorporated into clothing.
 The material is so thin that it's completely transparent, and it can be deposited on virtually any other material. For example, MoS2 could be applied to glass, producing displays built into a pair of eyeglasses or the window of a house or office.

100,000 Dots-Per-Inch (DPI) image resolution is achieved using metal-laced nanostructures

Researchers from Institute of Materials Research and Engineering (IMRE) have developed an innovative method for creating sharp, full-spectrum colour images at 100,000 dots per inch (dpi), using metal-pattern nanostructures, without the need for inks. In comparison, current industrial printers such as inkjet and laser jet printers can only achieve up to 10,000 dpi while research grade methods are able to dispense dyes for only single colour images. This novel breakthrough using lithographic technique which can potentially revolutionise the way images are printed and be developed for use in high-resolution reflective colour displays as well as high density optical data storage.
 The inspiration for the research was derived from stained glass, which is traditionally made by mixing tiny fragments of metal into the glass. It was found that nanoparticles from these metal fragments scattered light passing through the glass to give stained glass its colours. Using a similar concept with the help of modern nanotechnology tools, the researchers precisely patterned metal nanostructures, and designed the surface to reflect the light to achieve the colour images.
The resolution of printed colour images very much depends on the size and spacing between individual nanodots. The closer the dots are together and because of their small size, the higher the resolution of the image. With the ability to accurately position these extremely small colour dots, the highest theoretical print colour resolution of 100,000 dpi could be achieved.
Instead of using different dyes for different colours, colour information is encoded into the size and position of tiny metal disks. These disks then interacted with light through the phenomenon of plasmon resonances. Nanostructure pattern, size and spacing are then correlated with the database of colour. These nanostructures were then positioned accordingly.

Monday, August 27, 2012

Mechanical Device invented to measure the mass of a single molecule


A team led by scientists at the California Institute of Technology (Caltech) have made the first-ever mechanical device that can measure the mass of individual molecules one at a time.

This new technology, the researchers say, will eventually help doctors diagnose diseases, enable biologists to study viruses and probe the molecular machinery of cells, and even allow scientists to better measure nanoparticles and air pollution.

The device, which is only a couple millionths of a meter in size, consists of a tiny, vibrating bridge-like structure. When a particle or molecule lands on the bridge, its mass changes the oscillating frequency in a way that reveals how much the particle weighs.

The new instrument is based on a technique Roukes and his colleagues developed over the last 12 years. In work published in 2009, they showed that a bridge-like nanoelectromechanical device could indeed measure the masses of individual particles, which were sprayed onto the apparatus. The difficulty, however, was that the measured shifts in frequencies depended not only on the particle's actual mass, but also on where the particle landed. Without knowing the particle's landing site, the researchers had to analyze measurements of about 500 identical particles in order to pinpoint its mass.

But with the new and improved technique, the scientists need only one particle to make a measurement. To do so, the researchers analyzed how a particle shifts the bridge's vibrating frequency. All oscillatory motion is composed of so-called vibrational modes. If the bridge just shook in the first mode, it would sway side to side, with the center of the structure moving the most. The second vibrational mode is at a higher frequency, in which half of the bridge moves sideways in one direction as the other half goes in the opposite direction, forming an oscillating S-shaped wave that spans the length of the bridge. There is a third mode, a fourth mode, and so on. Whenever the bridge oscillates, its motion can be described as a mixture of these vibrational modes.

The team found that by looking at how the first two modes change frequencies when a particle lands, they could determine the particle's mass and position. Traditionally, molecules are weighed using a method called mass spectroscopy, in which tens of millions of molecules are ionized -- so that they attain an electrical charge -- and then interact with an electromagnetic field. By analyzing this interaction, scientists can deduce the mass of the molecules.
The problem with this method is that it does not work well for more massive particles which have a harder time gaining an electrical charge. As a result, their interactions with electromagnetic fields are too weak for the instrument to make sufficiently accurate measurements.
The new device, on the other hand, does work well for large particles. In fact, the researchers say, it can be integrated with existing commercial instruments to expand their capabilities, allowing them to measure a wider range of masses.
The researchers demonstrated how their new tool works by weighing a molecule called immunoglobulin, an antibody produced by immune cells in the blood. By weighing each molecule, which can take on different structures with different masses in the body, the researchers were able to count and identify the various types of immunoglobulin. Not only was this the first time a biological molecule was weighed using a nanomechanical device, but the demonstration also served as a direct step toward biomedical applications. Future instruments could be used to monitor a patient's immune system or even diagnose immunological diseases.

In the more distant future, the new instrument could give biologists a view into the molecular machinery of a cell. Proteins drive nearly all of a cell's functions, and their specific tasks depend on what sort of molecular structures attach to them -- thereby adding more heft to the protein -- during a process called posttranslational modification. By weighing each protein in a cell at various times, biologists would now be able to get a detailed snapshot of what each protein is doing at that particular moment in time.

Another advantage of the new device is that it is made using standard, semiconductor fabrication techniques, making it easy to mass-produce. That's crucial, since instruments that are efficient enough for doctors or biologists to use will need arrays of hundreds to tens of thousands of these bridges working in parallel.