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A giant step toward tiny functional nanowires
July 01, 2005
EVANSTON, Ill. -- Carving a telephone pole is easy if you have the right tools, say a power saw and some large chisels. And with some much tinier tools you could even carve a design into a paper clip if you wanted to. But shrink your sights down to the nanoscale, to a nanowire that is 1,000 times smaller than the diameter of a paper clip, and you find there are no physical tools to do the job properly. So a team of Northwestern University scientists turned to chemistry and developed a new method that can routinely and cheaply produce nanowires with gaps as small as five nanometers wide - a feat that is unattainable using conventional lithographic techniques. The results will be published in the July 1 issue of the journal Science. Carved gaps are essential to a nanowire's function, and controlling those gaps would allow scientists and engineers to design with precision devices ranging from tiny integrated circuits to gene chips and protein arrays for diagnostics and drug discovery.
"With miniaturization happening across so many fields, our existing tools - our chisels of a sort - can't control the shapes and spacing of these small structures," said Chad A. Mirkin, director of Northwestern's Institute for Nanotechnology, who led the research team. "Our method allows us to selectively introduce gaps into the wires. These gaps can be filled with molecules, making them components for building small electronic and photonic devices or chemical and biological sensors."
The development of sophisticated nanoelectronics, said Mirkin, depends on the ability to fabricate and functionalize electrode gaps less than 20 nanometers wide for precise electrical measurements on nanomaterials and even individual molecules. While conventional techniques can't make gaps much smaller than 20 nanometers wide, Mirkin's method, called on-wire lithography, or OWL, has been able to produce gaps as small as 2.5 nanometers wide.
Mirkin and his team made the notched structures by first depositing into a porous template segmented nanowires made of two materials, one that is resistant to wet-chemical etching (gold) and one that is susceptible (nickel). The template is then dissolved, releasing the nanowires. Next, the wires are dispersed on a flat substrate, and a thin layer of glass is deposited onto their exposed faces. They are then suspended in solution, and a selective wet-chemical etching removes the nickel, leaving gold nanowires with well-defined gaps where the nickel used to be. (The glass is used as a bridging material, to hold the nanowire together.)
Using the OWL method, the researchers prepared nanowires with designed gaps of 5, 25, 40, 50, 70, 100, 140 and 210 nanometers wide. (A nanometer is one billionth of a meter or roughly the length of three atoms side by side. A DNA molecule is 2.5 nanometers wide.) In recent days, they have refined the technique to be able to make gaps as small as 2.5 nanometers wide.
"With dip-pen nanolithography, we can then drop into these gaps many different molecules, depending on what function we want the structure to have," said Mirkin, also George B. Rathmann Professor of Chemistry. "This really opens up the possibility of using molecules as components for a variety of nanoscale devices."
In addition to Mirkin, other authors on the Science paper are Lidong Qin (lead author), Sungho Park and Ling Huang of Northwestern University.
Northwestern University
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Oakley Men's Nanowire 3.0 Iridium Polarized Sunglasses,Polished Black Frame/Black Lens,one size
by Oakley
OAKLEY NANOWIRE 3.0 POLARIZED 12-919 SUNGLASSES
FRAME: POLISHED BLACK
LENS: BLACK IRIDIUM POLARIZED
MODEL # 12-919
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Inorganic Nanowires: Applications, Properties, and Characterization
by M. Meyyappan (Author), Mahendra K. Sunkara (Author)
Advances in nanofabrication, characterization tools, and the drive to commercialize nanotechnology products have contributed to the significant increase in research on inorganic nanowires (INWs). Yet few if any books provide the necessary comprehensive and coherent account of this important evolution.
Presenting essential information on both popular and emerging varieties, Inorganic Nanowires: Applications, Properties, and Characterization addresses the growth, characterization, and properties of nanowires. Authors Meyyappan—a NASA scientist and renowned leader in nanoscience and technology—and Sunkara—a major contributor to nanowire literature—offer an in-depth overview of various types of nanowires, including semiconducting, metallic, and oxide varieties....
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Oakley Oakley Nanowire 2.0 Men's Polarized Active Race Wear Sunglasses - Color: Pewter/Black Iridium, Size: One Size Fits All
by Oakley
Our athletes spend a lot of time defying gravity, so we figured they should have a lifestyle sunglass that does the same. It's made of an ultra-lightweight titanium alloy that lets us create sculptural contours without sacrificing flexibility, so even if you're just competing in the rat race, you can take advantage of memory metal that offers an adaptable fit. But the real marvel of engineering is the way we packed so much innovation into so light a frame.
The unbeatable clarity of HIGH DEFINITION OPTICS (HDO) has been matched with the finest technologies ever to tame light rays. OAKLEY NANOWIRE blocks glare with 99% polarization efficiency, thanks to the best polarized lenses on the planet. Our permanent HYDROPHOBIC lens coating repels water, skin oils and dust. IRIDIUM lens...
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Oakley Men's Nanowire 4.0 Iridium Polarized Sunglasses,Light Frame/Tungsten Lens,one size
by Oakley
Oakley crafted the Nanowire 4.0 Polarized Sunglasses with a high quality titanium alloy and its high Definition Optics for a light weight and glare-reducing performance, whether you're on the slopes or the water. The Nanowire's titanium memory metal provides a flexible and adaptable fit, and the Unobtanium pads increase their grip when you sweat. The hydrophobic coating repels water, dust, dirt and skin oils, and an Iridium lense coating balances light transmission and filters 100% of UV rays.
Product FeaturesFrame: Titanium alloy Hinge Type: SteelLens: Glass, PolycarbonateInterchangeable Lens: No Polarized: Yes Face Size: MediumCase Type: Hard Nose Pads: Yes Arm Pads: Yes Recommended Use: Casual, activeManufacturer Warranty:...
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Nanotubes and Nanowires (Selected Topics in Electronics and Systems)
by Peter John Burke (Author), Peter John Burke (Editor)
The field of nanotubes and nanowires is evolving at a rapid pace, with many potential applications in electronics, optics, and sensors, to name a few. In this book, various prominent researchers summarize our current understanding of these new materials systems, as well as some of these potential applications. A snapshot of the state-of-the-art in the field of nanowires and nanotubes, the contributions give an instructive mix of experimental, theoretical, and visionary material to give the reader an indication of where the field is now, and where it is going.
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Oakley Men's Nanowire 2.0 Iridium Polarized Sunglasses,Polished Black Frame/VR28 Black Lens,one size
by Oakley
The Oakley Nanowire 2.0 Sunglasses feature featherweight titanium alloy wire frames and Unobtanium rubber earpieces that comfortably hug the contours your head. These polarized sunglasses offer a fit for medium to large face sizes. While you're out on the road, the Nanowire's lenses give you the quality distortion-free and glare-destroying polarized optics you'd expect from a genuine Oakley product. The Nanowire frame features memory metal technology, which means the super bendy metal adjusts automatically to comfortably fit your faceit returns to how it's original form when you take these shades off. To keep your sunglasses in pristine condition, Oakley applied a permanent hydrophobic coating so the lens surface repels water, oil, and dust, thus giving you clear vision.
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Nanowires and Nanobelts: Materials, Properties and Devices: Volume 2: Nanowires and Nanobelts of Functional Materials
by Zhong Lin Wang (Editor)
Nanowires, nanobelts, nanoribbons, nanorods ..., are a new class of quasi-one-dimensional materials that have been attracting a great research interest in the last few years. These non-carbon based materials have been demonstrated to exhibit superior electrical, optical, mechanical and thermal properties, and can be used as fundamental building blocks for nano-scale science and technology, ranging from chemical and biological sensors, field effect transistors to logic circuits. Nanocircuits built using semiconductor nanowires demonstrated were declared a "breakthrough in science" by Science magazine in 2001. Nature magazine recently published a report claiming that "Nanowires, nanorods, nanowhiskers, it does not matter what you call them, they are the hottest property in nanotechnology"...
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Oakley Nanowire 1.0 Men's Polarized Active Lifestyle Racewear Sunglasses - Color: Brown Chrome/Tungsten Iridium, Size: One Size Fits All
by Oakley
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Enhanced Field Emission from Metallic Surfaces and Nanowires
by Arti Dangwal-Pandey (Author)
The role of material properties, surface preparation and cleaning techniques on Nb and Cu was studied for EFE , which is disastrous for high field vacuum devices. Dry ice cleaning is found to suppress EFE from the metallic surfaces very efficiently. High purity single crystal and large grain Nb samples showed the onset of FE at high fields (120 ? 200 MV/m).For the first time, the grain boundary assisted field emission was observed for Nb. A correlationbetween size of emitters and onset fields is obtained, which sets a threshold for the tolerable defect size to achieve the envisaged accelerating gradients in cavities reliably.Additionaly, the systematic study performed on electrochemically deposited Cu, Ni and Au nanowires of different aspect ratios and spatial distribution for cold...
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Oakley Oakley Nanowire 4.0 Men's Polarized Active Sports Wear Sunglasses $259.00
by Oakley
If you get a sinking feeling that the world is disappearing before your eyes, it's probably just hiding in a haze of glare. When light reflects off flat surfaces, the resulting glare can be 10 times brighter. That's not a good thing if you're driving a car, avoiding a water hazard on the back nine or playing any sport to win. Oakley polarized lenses block glare with efficiency greater than 99%, and we make them with a process that eliminates the haze and optical distortion found in ordinary polarized lenses.
You won't find satellites or lunar rovers on our product list but when we engineer a sunglasses frame for unparalleled durability and minimized weight, we earn our place in the space race. That's because we start with the same metal used in orbital vehicles, titanium, and we...
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