IHS Inc., Englewood, Colo., reports that the emerging market for silicon carbide and gallium nitride power semiconductors is forecast to pass the $1 billion mark in five years, energized by demand from hybrid and electric vehicles, power supplies, and photovoltaic inverters.
Continue readingAdvanced power amplifiers enable faster data access, better connections
Global Foundries, Santa Clara, Calif., announces advanced radio-frequency silicon solutions for power amplifiers, further expanding the portfolio of silicon-germanium power amplifier technologies designed to enable performance-optimized cellular and Wi-Fi devices.
Continue readingSunEdison Semiconductor initiates agreements to assure polysilicon supply
SunEdison Semiconductor Ltd., says that over the past several months it has been working on several initiatives to improve contingency planning for polysilicon supply and to manage the transition to multiple sources.
Continue readingImec and Iminds to merge and create nanoelectronics research center
Imec and Iminds, both of Belgium, announce that they intend to merge the research centers to create a nanotech research center in which Iminds will be integrated as an additional business unit within Imec.
Continue readingSoitec announces volume manufacturing of 300mm RF-SOI substrates
Soitec, France, has begun mass production of 300mm radio-frequency silicon-on-insulator (RF-SOI) substrates for mobile communications.
Continue readingLiquidmetal Technologies to make guitar parts by injection molding amorphous alloys
Liquidmetal Technologies Inc., Rancho Santa Margarita., Calif., has entered into a development agreement with C.F. Martin & Co. (Martin Guitar) to design a guitar component to be made of Liquidmetal amorphous alloys and manufactured by the Liquidmetal injection molding machine.
Continue readingC.I. Hayes installs pusher furnace for brazing and heat treating
C.I. Hayes, a Gasbarre Furnace Group Company, Cranston, R.I., announces the recent installation of a Model BA-M atmosphere pusher furnace for brazing and general heat treating of stainless steel materials by a dedicated processor of select cutlery product lines.
Continue readingCornell research team works to reduce GaN power diode defects and improve reliability
Cornell University, Ithaca, N.Y., the University of Notre Dame, South Bend, Ind., and the semiconductor company IQE, Cardiff, Wales, put together an engineering team that has created gallium nitride (GaN) power diodes capable of serving as building blocks for future GaN power switches.
Continue readingLiquidmetal amorphous alloy in hybrid knife is 25% harder than stainless steel
Liquidmetal Technologies Inc., Rancho Santa Margarita, Calif., has developed the Liquidmetal Hybrid Knife, manufactured of LM105 amorphous alloy by the Liquidmetal process.
Continue readingIpsen AvaC two-chamber gas/oil furnace doubles carbon availability
Ipsen, Cherry Valley, Ill., recently shipped an AvaC (acetylene vacuum carburizing) two-chamber gas/oil quench vacuum furnace to a facility in Connecticut where it will be used to process sports equipment.
Continue readingRoads that de-ice themselves
With the arrival of winter, stores, cities, and homeowners are stocking up on salt, gravel, and sand in anticipation of slippery roads.
Continue readingCardiff University and IQE partner to build center for compound semiconductor research
Cardiff University and IQE plc, both of Wales, announce a joint venture to build the Compound Semiconductor Centre, which has the goal of developing and commercializing next-generation compound semiconductor technologies.
Continue readingOn Semiconductor to acquire Fairchild Semiconductor for $2.4 billion
On Semiconductor Corp., Phoenix, Ariz., and Fairchild Semiconductor Intl. Inc., South Portland, Maine, announce plans for On Semiconductor to acquire Fairchild for $20.00 per share in an all cash transaction valued at approximately $2.4 billion.
Continue readingPickin’ up good vibrations with rock hard guitar picks
Genvac Aerospace Inc., Cleveland, launched a crowdfunding campaign introducing Rock Hard Metal, a line of diamond-enhanced guitar picks.
Continue readingElectronic watch is powered by wrist movements
Researchers created a self-powered electronic watch that harvests energy from the wearer’s wrist movements for continuous operation.
Continue readingEnergy-absorbing materials offer protection to buildings and athletes (with video)
Purdue University is collaborating with General Motors to develop a new type of energy-absorbing material that might be 3D printed and that could have an impact in areas ranging from earthquake engineering to safer football helmets.
Continue readingConstellium launches Aeral aluminum for aerosol cans
Constellium N.V., Amsterdam, has launched Aeral, an aluminum solution designed for making aerosol containers by the “drawn and ironed” technology currently used to produce beverage cans.
Continue readingBodycote expands hot isostatic pressing capacity
Bodycote, England, is expanding its high pressure Hot Isostatic Pressing (HIP) capability with the addition of a new mid-range vessel to increase its volume capacity.
Continue readingAehr receives first order for Fox-XP test and burn-in system
Aehr Test Systems, Fremont, Calif., has received its first order for its Fox-XP wafer level test and burn-in system, including multiple Fox-XP WaferPak contactors and application development services.
Continue readingAtomic structure model enables prediction of metal combinations that can form metallic glasses
Australia’s University of New South Wales announces that a research team has developed a method for predicting the combinations of metals that will produce metallic glass alloys.
Continue readingGlobal Foundries launches 22FDX semiconductor technology for ultralow-power devices
Global Foundries, Santa Clara, Calif., has launched a new semiconductor technology developed specifically to meet the ultralow-power requirements of the next generation of connected devices.
Continue readingAustria’s AMS to invest $2 billion in new fab in New York state
AMS AG, Austria, formerly Austriamicrosystem, plans to locate a new 360,000 sq. ft. fab in upstate New York at the Nano Utica site in Marcy to manufacture analog devices on 200/300 mm wafers.
Continue readingApplied Materials introduces high-performance ALD technology for 3D thin film devices
Applied Materials Inc., Santa Clara, introduces the Applied Olympia ALD (atomic layer deposition) system featuring a unique, modular architecture that delivers high-performance ALD technology to manufacturers of leading-edge 3D memory and logic chips.
Continue readingMaterion doubles capacity for ToughMet CuNiSn alloys
Materion Performance Alloys, Mayfield Heights, Ohio, has more than doubled its capacity to produce foil gauge ToughMet alloys that are used to make the company’s BrushForm 158 copper-nickel-tin alloy strip product line.
Continue readingBlack phosphorus may replace silicon in future devices
Researchers at the Center for Integrated Nanostructure Physics at Sungkyunkwan University, South Korea, report that they have developed a high-performance transistor made of black phosphorus (BP).
Continue readingChinese company to bid for Micron Technology
China’s state-owned Tsinghua Unigroup Ltd. is preparing a $23 billion bid for chipmaker Micron Technology, San Diego, in what some say would be the biggest Chinese takeover of a U.S. company.
Continue readingRohm acquires Powervation for its Intelligent Digital Power platform
Rohm Co. Ltd., Japan, announces that it has completed the acquisition of Powervation Ltd., Cork, Ireland.
Continue readingStratasys to provide up to 1000 3D printers to China
Stratasys Ltd., Minneapolis, announces that Kangshuo Group Co. Ltd is opening the largest 3D printing service bureau network dedicated to serving China’s domestic market with up to 1000 high precision 3D printers from the company’s Solidscape subsidiary.
Continue readingHydrogel coating creates “stick-slip” control of capillary movement
Coating the inside of glass microtubes with a polymer hydrogel material dramatically alters the way capillary forces draw water into the tiny structures, according to researchers. The discovery could provide a new way to control microfluidic systems, including popular lab-on-a-chip devices.
Capillary action draws water and other liquids into confined spaces such as tubes, straws, wicks, and paper towels, and the flow rate can be predicted using a simple hydrodynamic analysis. But a chance observation by researchers at the Georgia Institute of Technology, Atlanta, will cause a recalculation of those predictions for conditions in which hydrogel films line the tubes carrying water-based liquids.
“Rather than moving according to conventional expectations, water-based liquids slip to a new location in the tube, get stuck, then slip again – and the process repeats over and over again,” explained Andrei Fedorov, a mechanical engineering professor. “Instead of filling the tube with a rate of liquid penetration that slows with time, the water propagates at a nearly constant speed into the hydrogel-coated capillary. This was very different from what we had expected.”
When the opening of a thin glass tube is exposed to a droplet of water, liquid begins to flow into the tube, pulled by a combination of surface tension in the liquid and adhesion between the liquid and the walls of the tube. Leading the way is a meniscus, a curved surface of the water at the leading edge of the water column. An ordinary borosilicate glass tube fills by capillary action at a gradually decreasing rate with the speed of meniscus propagation slowing as a square root of time.
But when the inside of a tube is coated with a very thin layer of poly(N-isopropylacrylamide), a so-called “smart” polymer (PNIPAM), everything changes. Water entering a tube coated on the inside with a dry hydrogel film must first wet the film and allow it to swell before it can proceed farther into the tube. The wetting and swelling take place not continuously, but with discrete steps in which the water meniscus first sticks and its motion remains arrested while the polymer layer locally deforms. The meniscus then rapidly slides for a short distance before the process repeats. This “stick-slip” process forces the water to move into the tube in a step-by-step motion.
The flow rate measured by the researchers in the coated tube is three orders of magnitude less than the flow rate in an uncoated tube. A linear equation describes the time dependence of the filling process instead of a classical quadratic equation which describes filling of an uncoated tube.
“Instead of filling the capillary in a hundredth of a second, it might take tens of seconds to fill the same capillary,” said Fedorov. “Though there is some swelling of the hydrogel upon contact with water, the change in the tube diameter is negligible due to the small thickness of the hydrogel layer. This is why we were so surprised when we first observed such a dramatic slow-down of the filing process in our experiments.”
Researchers –tried the experiment again using glycerol, a liquid that is not absorbed by the hydrogel. With glycerol, the capillary action proceeded through the hydrogel-coated microtube as with an uncoated tube in agreement with conventional theory. After using high-resolution optical visualization to study the meniscus propagation while the polymer swelled, the researchers realized they could put this previously-unknown behavior to good use.
Water absorption by the hydrogels occurs only when the materials remain below a specific transition temperature. When heated above that temperature, the materials no longer absorb water, eliminating the “stick-slip” phenomenon in the microtubes and allowing them to behave like ordinary tubes.
This ability to turn the stick-slip behavior on and off with temperature could provide a new way to control the flow of water-based liquid in microfluidic devices, including labs-on-a-chip. The transition temperature can be controlled by varying the chemical composition of the hydrogel.
“By locally heating or cooling the polymer inside a microfluidic chamber, you can either speed up the filling process or slow it down,” Fedorov said. “The time it takes for the liquid to travel the same distance can be varied up to three orders of magnitude. That would allow precise control of fluid flow on demand using external stimuli to change polymer film behavior.”
The heating or cooling could be done locally with lasers, tiny heaters, or thermoelectric devices placed at specific locations in the microfluidic devices. That could allow precise timing of reactions in microfluidic devices by controlling the rate of reactant delivery and product removal, or allow a sequence of fast and slow reactions to occur. Another important application could be controlled drug release in which the desired rate of molecule delivery could be dynamically tuned over time to achieve the optimal therapeutic outcome.
In future work, Fedorov and his team hope to learn more about the physics of the hydrogel-modified capillaries and study capillary flow using partially-transparent microtubes. They also want to explore other “smart” polymers which change the flow rate in response to different stimuli, including the changing pH of the liquid, exposure to electromagnetic radiation, or the induction of mechanical stress – all of which can change the properties of a particular hydrogel designed to be responsive to those triggers.
“These experimental and theoretical results provide a new conceptual framework for liquid motion confined by soft, dynamically evolving polymer interfaces in which the system creates an energy barrier to further motion through elasto-capillary deformation, and then lowers the barrier through diffusive softening,” researchers write. “This insight has implications for optimal design of microfluidic and lab-on-a-chip devices based on stimuli-responsive smart polymers.”
This research was supported by the Air Force Office of Scientific Research BIONIC Center through awards FA9550-09-1-0162 and FA9550-14-1-0269, AFOSR award FA-9550-14-1-0015, and by Georgia Tech’s Renewable Bioproducts Institute Fellowship. The content is solely the responsibility of the authors and does not necessarily represent the official views of the sponsors.
Producing biodegradable plastic just got cheaper and greener
Biodegradable drinking cups or vegetable wrapping foil: the bioplastic known as polylactic acid (PLA) is already a part of our everyday lives.
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