Showing posts with label Nanotechnology varied use. Show all posts
Showing posts with label Nanotechnology varied use. Show all posts

Monday, November 10, 2014

Australian University Leading The charge for Panel Powered Car

QUT leading the charge for panel-powered car


QUT (Queensland University of Technology)
06 November 2014




A car powered by its own body panels could soon be driving on our roads after a breakthrough in nanotechnology research by a QUT team.

[caption id="attachment_217" align="aligncenter" width="660"]Australian University Leading The charge for Panel Powered Car Nanotechnology-Australia-042 QUT's Professor Nunzio Motta with one of the university's powerful nanotechnology microscopes.[/caption]

Researchers have developed lightweight "supercapacitors" that can be combined with regular batteries to dramatically boost the power of an electric car.

The discovery was made by Postdoctoral Research Fellow Dr Jinzhang Liu, Professor Nunzio Motta and PhD researcher Marco Notarianni, from QUT's Science and Engineering Faculty - Institute for Future Environments, and PhD researcher Francesca Mirri and Professor Matteo Pasquali, from Rice University in Houston, in the United States.

The supercapacitors - a "sandwich" of electrolyte between two all-carbon electrodes - were made into a thin and extremely strong film with a high power density.

The film could be embedded in a car's body panels, roof, doors, bonnet and floor - storing enough energy to turbocharge an electric car's battery in just a few minutes.

The findings, published in the Journal of Power Sources and the Nanotechnologyjournal, mean a car partly powered by its own body panels could be a reality within five years, Mr Notarianni said.

"Vehicles need an extra energy spurt for acceleration, and this is where supercapacitors come in. They hold a limited amount of charge, but they are able to deliver it very quickly, making them the perfect complement to mass-storage batteries," he said.

"Supercapacitors offer a high power output in a short time, meaning a faster acceleration rate of the car and a charging time of just a few minutes, compared to several hours for a standard electric car battery."

Dr Liu said currently the "energy density" of a supercapacitor is lower than a standard lithium ion (Li-Ion) battery, but its "high power density", or ability to release power in a short time, is "far beyond" a conventional battery.

"Supercapacitors are presently combined with standard Li-Ion batteries to power electric cars, with a substantial weight reduction and increase in performance," he said.

"In the future, it is hoped the supercapacitor will be developed to store more energy than a Li-Ion battery while retaining the ability to release its energy up to 10 times faster - meaning the car could be entirely powered by the supercapacitors in its body panels.

"After one full charge this car should be able to run up to 500km - similar to a petrol-powered car and more than double the current limit of an electric car."

Dr Liu said the technology would also potentially be used for rapid charges of other battery-powered devices.

"For example, by putting the film on the back of a smart phone to charge it extremely quickly," he said.

The discovery may be a game-changer for the automotive industry, with significant impacts on financial, as well as environmental, factors.

"We are using cheap carbon materials to make supercapacitors and the price of industry scale production will be low," Professor Motta said.

"The price of Li-Ion batteries cannot decrease a lot because the price of Lithium remains high. This technique does not rely on metals and other toxic materials either, so it is environmentally friendly if it needs to be disposed of."

The researchers are part of QUT's Battery Interest Group, a cross-faculty group that aims to engage industry with battery-related research.

News Release Source : QUT leading the charge for panel-powered car

Monday, March 10, 2014

Gold Nanomesh Electrodes : New Flexible Transparent Conductor

UH researchers create new flexible, transparent conductor


Discovery brings bendable cell phone, foldable flat-screen TV closer to reality

University of Houston researchers have developed a new stretchable and transparent electrical conductor, bringing the potential for a fully foldable cell phone or a flat-screen television that can be folded and carried under your arm closer to reality.

[caption id="attachment_202" align="aligncenter" width="500"]Gold Nanomesh Electrodes : New Flexible Transparent Conductor Nanotechnology-Australia-039 Gold Nanomesh Electrodes : New Flexible Transparent Conductor[/caption]

Zhifeng Ren, a physicist at the University of Houston and principal investigator at the Texas Center for Superconductivity, said there long has been research on portable electronics that could be rolled up or otherwise easily transported. But a material that is transparent and has both the necessary flexibility and conductivity has proved elusive – some materials have two of the components, but until now, finding one with all three has remained difficult.

The gold nanomesh electrodes produced by Ren and his research associates Chuan Fei Guo and Tianyi Sun at UH, along with two colleagues at Harvard University, provide good electrical conductivity as well as transparency and flexibility, the researchers report in a paper published online Tuesday in Nature Communications.

The material also has potential applications for biomedical devices, said Ren, lead author on the paper. The researchers reported that gold nanomesh electrodes, produced by the novel grain boundary lithography, increase resistance only slightly, even at a strain of 160 percent, or after 1,000 cycles at a strain of 50 percent. The nanomesh, a network of fully interconnected gold nanowires, has good electrical conductivity and transparency, and has "ultrahigh stretchability," according to the paper.

And unlike silver or copper, gold nanomesh does not easily oxidize, which Ren said causes a sharp drop in electrical conductivity in silver and copper nanowires. Guo said the group is the first to create a material that is more stretchable and conductive at similar transparency, as well as the first to use grain boundary lithography in the quest to do so. More importantly, he said, it is the first to offer a clear mechanism to produce ultrahigh stretchability.

The grain boundary lithography involved a bilayer lift-off metallization process, which included an indium oxide mask layer and a silicon oxide sacrificial layer and offers good control over the dimensions of the mesh structure.

"This is very useful to the field of foldable electronics," Guo said. "It is much more transportable." Sun noted that Korean electronics maker Samsung demonstrated a cellphone with a bendable screen in October; LG Electronics has introduced a curved cellphone that is available now in Asia.

But neither is truly foldable or stretchable, instead curving slightly to better fit against the user's face. "For that kind of device, we need something flexible, transparent," Sun said of a foldable phone. "If we want to further that technology, we need something else, and the something else could be the technology we are developing."

Ren noted that, although gold nanomesh is superior to other materials tested, even it broke and electrical resistance increased when it was stretched. But he said conductivity resumed when it was returned to the original dimensions.

That didn't prove true with silver, he said, presumably because of high oxidation. The work at the University of Houston was funded by the Department of Energy, while that at Harvard was funded by a National Science Foundation grant.
###

About the University of Houston

The University of Houston is a Carnegie-designated Tier One public research university recognized by The Princeton Review as one of the nation's best colleges for undergraduate education. UH serves the globally competitive Houston and Gulf Coast Region by providing world-class faculty, experiential learning and strategic industry partnerships. Located in the nation's fourth-largest city, UH serves more than 39,500 students in the most ethnically and culturally diverse region in the country.

News Release Source :  UH researchers create new flexible, transparent conductor

Asymmetric Graphene Nanoribbons - New Devices That Control Heat Flow

Research could bring new devices that control heat flow


WEST LAFAYETTE, Ind. — Researchers are proposing a new technology that might control the flow of heat the way electronic devices control electrical current, an advance that could have applications in a diverse range of fields from electronics to textiles.

The concept uses tiny triangular structures to control "phonons," quantum-mechanical phenomena that describe how vibrations travel through a material's crystal structure.

[caption id="attachment_197" align="aligncenter" width="500"]Asymmetric Graphene Nanoribbons - New Devices That Control Heat Flow Nanotechnology-Australia-038 Asymmetric Graphene Nanoribbons - New Devices That Control Heat Flow[/caption]

Findings in research using advanced simulations show the triangular or T-shaped structures - if small enough in width - are capable of "thermal rectification," or permitting a greater flow of heat in one direction than in the opposite direction, said Xiulin Ruan, an associate professor in Purdue University's School of Mechanical Engineering and Birck Nanotechnology Center.

Rectification has made possible transistors, diodes and memory circuits central to the semiconductor industry. The new devices are thermal rectifiers that might perform the same function, but with phonons instead of electrical current.

"In most systems, heat flow is equal in both directions, so there are no thermal devices like electrical diodes. However, if we are able to control heat flow like we control electricity using diodes then we can enable a lot of new and exciting thermal devices including thermal switches, thermal transistors, logic gates and memory," said Ruan, whose research group collaborated with a group led by Yong Chen, an associate professor in Purdue's Department of Physics and School of Electrical and Computer Engineering. "People are just starting to understand how it works, and it is quite far from being used in applications."

Findings are detailed in a research paper that has appeared online in the journal Nano Letters and will be published in an upcoming issue of the journal. The paper was authored by doctoral students Yan Wang, Ajit Vallabhaneni and Jiuning Hu and former doctoral student Bo Qiu; Chen; and Ruan.

The researchers used an advanced simulation method called molecular dynamics to demonstrate thermal rectification in structures called "asymmetric graphene nanoribbons." Molecular dynamics simulations can simulate the vibrations of atoms and predict the heat flow in a material.

Graphene, an extremely thin layer of carbon, is promising for applications in electronics and computers. The triangular structure must be tiny in width to make possible the "lateral confinement" of phonons needed for the effect. Findings also show thermal rectification is not limited to graphene but could be seen in other materials in structures such as pyramidal, trapezoidal or T-shaped designs.

Hu, Ruan, and Chen also published a paper four years ago in the journal Nano Letters, among the first to propose asymmetric graphene nanoribbons as a thermal rectifier in research using the molecular dynamics simulations. Although numerous studies have been devoted to this topic since then, until now researchers did not know the mechanism behind thermal rectification. The new findings show that this mechanism works by restricting vibrations as they travel through the small lateral direction of an asymmetrical structure.

"We demonstrate that other asymmetric materials, such as asymmetric nanowires, thin films, and quantum dots of a single material can also be high-performance thermal rectifiers, as long as you have lateral confinement," Ruan said. "This really broadens the potential of this rectification to a much wider spectrum of applications."

Thermal rectification is not seen in larger triangular-shape structures because they lack lateral confinement. In order for lateral confinement to be produced, the cross section of the structure must be much smaller than the "mean free path" of a phonon, or only a few to hundreds of nanometers depending on the material, Wang said.

"This is the average distance a phonon can travel before it collides with another phonon," he said. However, although the devices must be tiny, they could be linked in series to produce larger structures and better rectification performance. The concept could find uses in "thermal management" applications for computers and electronics, buildings and even clothing.

"For example, on a winter night you don't want a building to lose heat quickly to the outside, while during the day you want the building to be warmed up by the sun, so it would be good to have building materials that permit the flow of heat in one direction, but not the other," Ruan said.

A potential, although speculative, future application could be thermal transistors. Unlike conventional transistors, thermal transistors would not require the use of silicon, are based on phonons rather than electrons and might make use of the large amount of waste heat that is already generated in most practical electronics, said Chen.
###

The research was funded by the U.S. Air Force Office of Scientific Research.

Writer: Emil Venere, 765-494-4709, venere@purdue.edu

Sources: Xiulin Ruan, 765-494-5721, ruan@purdue.edu
Yong P. Chen, 765-494-0947, yongchen@purdue.edu

IMAGE CAPTION:

Researchers are proposing a new technology that controls the flow of heat the way electronic devices control electrical current. Triangular graphene nanoribbons (a) are proposed as a new thermal rectifier, in which the heat flow in one direction is larger than that in the opposite direction. Thermal rectification (b) is not limited to graphene, but can also be seen in other "asymmetric nanostructure materials" including thin films, pyramidal quantum dots, nanocones and triangles. (Purdue University image)

A publication-quality graphic is available at http://www.purdue.edu/uns/images/2014/ruan-rectification.jpg

ABSTRACT

Phonon Lateral Confinement Enables Thermal Rectification in Asymmetric Single-Material Nanostructures
Yan Wang,†,‡ Ajit Vallabhaneni,†,‡ Jiuning Hu,‡,§ Bo Qiu,†,‡ Yong P. Chen,‡,§,∥ and Xiulin Ruan*,†,‡
† School of Mechanical Engineering, Purdue University
‡ Birck Nanotechnology Center, Purdue University
§ School of Electrical and Computer Engineering, Purdue University
∥Department of Physics, Purdue University

We show that thermal rectification (TR) in asymmetric graphene nanoribbons (GNRs) is originated from phonon confinement in the lateral dimension, which is a fundamentally new mechanism different from that in macroscopic heterojunctions. Our molecular dynamics simulations reveal that, though TR is significant in nanosized asymmetric GNRs, it diminishes at larger width. By solving the heat diffusion equation, we prove that TR is indeed absent in both the total heat transfer rate and local heat flux for bulk-size asymmetric single materials, regardless of the device geometry or the anisotropy of the thermal conductivity. For a deeper understanding of why lateral confinement is needed, we have performed phonon spectra analysis and shown that phonon lateral confinement can enable three possible mechanisms for TR: phonon spectra overlap, inseparable dependence of thermal conductivity on temperature and space, and phonon edge localization, which are essentially related to each other in a complicated manner. Under such guidance, we demonstrate that other asymmetric nanostructures, such as asymmetric nanowires, thin films, and quantum dots, of a single material are potentially high-performance thermal rectifiers.

Note to Journalists: An electronic copy of the research paper is available from Emil Venere, 765-494-4709, venere@purdue.edu

News Release Source :  Research could bring new devices that control heat flow

Sunday, December 15, 2013

Nano Looms as the Next Pervasive Technology

Nano Looms as the Next Pervasive Technology


Science-based nanosystems could lead to the creation of fundamentally new services and devices.

FAIRFAX, Va., Dec. 12, 2013 /PRNewswire-USNewswire/ -- Scientists working on a nanotechnology initiative that involves more than two dozen government agencies say that tiny is poised to be the titan of future technologies. The National Nanotechnology Initiative (NNI), which also is engaging industry, academic partners and international participants, aims at moving discoveries from the laboratory into products that benefit both the military and public.




[caption id="attachment_190" align="aligncenter" width="409"]Nano Looms as the Next Pervasive Technology Nanotechnology-Australia-037 Nano Looms as the Next Pervasive Technology[/caption]

(Logo: http://photos.prnewswire.com/prnh/20130410/DC92618LOGO)


Several NNI leaders spoke with Rita Boland, senior news editor, SIGNAL Magazine, about the potential that nanotechnology will also offer health care and commercial sectors. "It's hard for me to imagine an area that won't be impacted by nanotechnology," says Dr. Lisa Friedersdorf, senior scientist, National Nanotechnology Coordination Office. "If we manipulate matter at these size scales, it's going to be part of everything we do."


Because of the broad reach promised by nanotechnology, partnerships will be important to ensure that fundamental research matches key needs. In addition, ensuring that the next-generation work force is well trained will result in commercialization of what nanotechnology enables and help overall economic health, Friedersdorf adds.


Dr. Lew Sloter, associate director, materials and structures, Office of the Assistant Secretary of Defense for Research and Engineering, says he could see a period in which the military will intensively exploit the understanding of nanoscale phenomena, nanoprocesses and nanomaterials for more specific defense applications, such as flexible display devices. Nanotechnology also could serve as a catalyst in energetic materials, an area in which the military has highly unusual needs, he points out. Safer explosives, which release energy rather than a kinetic force, could be better controlled if using nanoparticulate powers, for example.


Read this and other fascinating articles about how advances in nanotechnology will transform the world in the next 10 to 15 years in the December 2013 issue of SIGNAL Magazine online.


SIGNAL Magazine is the official publication of AFCEA International.


Established in 1946, AFCEA is a non-profit organization serving its members by providing a forum for the ethical exchange of information and dedicated to increasing knowledge through the exploration of issues relevant to its members in information technology, communications and electronics for the defense, homeland security and intelligence communities.


SOURCE AFCEA International

RELATED LINKS

www.afcea.org

News Release Source : Nano Looms as the Next Pervasive Technology

To see the full Article : Nano Looms as the Next Pervasive Technology

Wednesday, December 11, 2013

Scientists scale terahertz peaks in nanotubes

Scientists scale terahertz peaks in nanotubes


Rice University researchers find plasmonic root of terahertz signals in some carbon nanotubes 


HOUSTON – (Dec. 9, 2013) – Carbon nanotubes carry plasmonic signals in the terahertz range of the electromagnetic spectrum, but only if they’re metallic by nature or doped.

In new research, the Rice University laboratory of physicist Junichiro Kono disproved previous theories that dominant terahertz response comes from narrow-gap semiconducting nanotubes.

[caption id="attachment_187" align="aligncenter" width="500"]Scientists scale terahertz peaks in nanotubes Nanotechnology-Australia-036 Scientists scale terahertz peaks in nanotubes[/caption]

Knowing that metallic or doped nanotubes respond with plasmonic waves at terahertz frequencies opens up the possibility that the tubes can be used in a wide array of optoelectronic amplifiers, detectors, polarizers and antennas.

The work by Kono and his Rice colleagues appeared online recently in the American Chemical Society journal Nano Letters.

Scientists have long been aware of a terahertz peak in nanotubes, the tiny cylinders of rolled-up carbon that show so much promise for advanced materials. But experiments on batches of nanotubes, which generally grow in a willy-nilly array of types, failed to reveal why it was there.

The origin of the peak was not explainable because researchers were only able to experiment on mixed batches of nanotube types, said Qi Zhang, a graduate student in Kono’s group and lead author of the paper. “All the previous work was done with a mixture of semiconducting and metallic tubes. We are the first to clearly identify the plasmonic nature of this terahertz response,” he said.

Rice’s growing expertise in separating nanotubes by type allowed Kono and his group to test for terahertz peaks in batches of pure metallic nanotubes known as “armchairs” as well as nonmetallic, semiconducting tubes.

“Metallic carbon nanotubes are expected to show plasmon resonance in the terahertz and infrared range, but no group has clearly demonstrated the existence of plasmons in carbon nanotubes,” Zhang said. “Previously, people proposed one possible explanation — that the terahertz peak is due to interband absorption in the small band gaps in semiconducting nanotubes. We rejected that in this paper.”

Plasmons are free electrons on the surface of metals like gold, silver or even aluminum nanoparticles that, when triggered by a laser or other outside energy, ripple like waves in a pond. Strong waves can trigger plasmon responses in adjacent nanoparticles. They are being investigated at Rice and elsewhere for use in sophisticatedelectronic and medical applications.

The Kono group’s research showed plasmons rippling at terahertz frequencies only along the length of a nanotube, but not across its width. “The only way charge carriers can move around is in the long direction,” Kono said. The researchers previously used this fact to demonstrate that aligned carbon nanotubes act as an excellent terahertz polarizer with performance better than commercial polarizers based on metallic grids.

Nanotubes can be thousands of times longer than they are wide, and the ability to grow them (or cut them) to specific lengths or to dope semiconducting nanotubes to add free carriers would make the tubes highly tunable for terahertz frequencies, Kono said.

“This paper only clarifies the origin of this effect,” he said. “Now that we understand it, there’s so much to do. We will be making various terahertz devices, architectures and systems based on carbon nanotube plasmons.”

Rice alumni Erik Hároz, now a postdoctoral researcher at Los Alamos National Laboratory, and Lei Ren, a researcher at TGS, co-authored the paper with undergraduate student Zehua Jin, postdoctoral researcher Xuan Wang, senior research scientist Rolf Arvidson and Andreas Lüttge, a research professor of Earth science and chemistry, all of Rice. Kono is a professor of electrical and computer engineering and of physics and astronomy and of materials science and nanoengineering.

The Department of Energy, the National Science Foundation and the Robert A. Welch Foundation supported the research.

-30-


Read the abstract at http://pubs.acs.org/doi/abs/10.1021/nl403175g?prevSearch=kono&searchHistoryKey

Follow Rice News and Media Relations via Twitter @RiceUNews

Related Materials:

Kono Laboratory: http://www.ece.rice.edu/~irlabs/

Image for download:



http://news.rice.edu/wp-content/uploads/2013/12/1209_PLASMONS-1-WEB.jpg

The ability to sort carbon nanotubes by type through a process called “density gradient ultracentrifugation (DGU)” allowed Rice researchers to test purified batches of nanotubes to find the cause of terahertz peaks in spectroscopic experiments. They determined that free electrons formed plasmons that ripple at terahertz frequencies in metallic and doped nanotubes. (Credit: Kono Laboratory/Rice University)

News Release Source : http://news.rice.edu/2013/12/09/scientists-scale-terahertz-peaks-in-nanotubes/

Monday, February 25, 2013

Nanofilm will be showcasing new products at Vision Expo

Nanofilm to exhibit at Vision Expo East, March 15-17


Nanofilm will be showcasing new products and a money-saving promotion at Vision Expo East Booth 812, March 15-17 at New York City’s Jacob Javits Center.


[caption id="attachment_155" align="aligncenter" width="440"]Nanofilm will be showcasing new products at Vision Expo www.nanotechnologyaustralia.com-031 Nanofilm will be showcasing new products at Vision Expo[/caption]

Valley View, OH (PRWEB) February 25, 2013

Nanofilm will be showcasing new products and a money-saving promotion at Vision Expo East Booth 812, March 15-17 at New York City’s Jacob Javits Center.

Nanofilm’s totally redesigned collection of Ultra Clarity sprays, towelettes and kits will be unveiled at the show. “The new Ultra Clarity design is a fresh, contemporary look for the advanced-performance lens care formula preferred around the world.

Nanofilm is also launching the It’s Your Lucky Day Scratch & Win Game. Visitors to the booth can pick up a game card for a chance to win savings off a purchase or a free case of lens care towelettes.

“Nanofilm will be showcasing new products, new designs and a money-saving promotion,” notes Jodi Groh, Nanofilm Director of Marketing. “It’s a chance to learn the difference Nanofilm can make to eyecare professionals and their customers.”

Vision Expo East is also a chance for eyecare professionals to learn about the complete Nanofilm lens care line:

  • Watch a live Defog It anti-fog demo. It’s a chance to test the long-lasting anti-fog formula proven by the military and becoming the worldwide choice for sports specs, safety glasses and an everyday fog-free view.

  • See the new towelettes in the Little Eyes kids lens care line. It’s a new option in the collection, added to the spray and microfiber cloth kit that’s packaged to look like a bright yellow school bus.


About Nanofilm (http://www.nanofilmproducts.com): Nanofilm, founded in 1985, is a global optical leader in lens care and coatings. Millions of people around the world use Nanofilm products, including Ultra Clarity™, Clarity Clean It™, Clarity Defog It™, EcoClens™ and other lens care products, as well as nanotechnology-enabled coatings.

Wednesday, August 22, 2012

Let Nanotechnology Erase Wrinkles and Aging

Let Nanotechnology Erase Wrinkles and Aging


Author: Farid Mostamand


With the advent and use of skin care products that are made with nanotechnology delivery techniques, wrinkles and aging no longer need to be paired together automatically. This scientific technology utilizes the tiniest of particles of synthetic matter in skin care products to focus on particular areas of the skin. These amazing products are able to penetrate deeply into the skin to the core of the area where aging and wrinkles are developed.

[caption id="attachment_143" align="aligncenter" width="300"]Let Nanotechnology Erase Wrinkles and Aging Let Nanotechnology Erase Wrinkles and Aging[/caption]

Creams Instead of Surgery
Skin care creams and cosmetics that utilize nanotechnology have reduced the need for surgical procedures to remove or reduce wrinkles in the areas that are most often affected, such as the eyes and lip areas, or around the nose and mouth. As a person ages, their skin can sag and dry out, increasing the opportunities for the skin to wrinkle and to increase fine lines that reduce that youthful look.

Sun Damage and Your Skin
The sun adds its damage to the skin by causing not only wrinkles, but increasing the chances of skin cancer and brown spots that we attribute to aging as well. The nano particles that are used in nanotechnology sunscreens can prevent the skin from wrinkling, while it further protects the skin from sun damage caused by ultraviolet light that hastens the aging of the skin; plus puts you in danger of developing health risks like skin cancer.

Plump Up Those Lips
Nanotechnology particles used in lip plumpers or lipsticks can reduce the wrinkles and lines caused by aging and/or sun damage and will plump up the area around the lips giving you a more youthful look that will amaze you. The lip area is one of the most prominent in showing age on a person when the skin dries up and causes wrinkles. Use of these plumpers can minimize the wrinkles without any surgical procedures.

Collagen Loss and Aging
Some wrinkle aging problems occur due to the loss of collagen in the skin. Antioxidant creams are known to improve the skin's recovery from wrinkles due to collagen loss. And an antioxidant cream that utilizes the nanotechnology delivery system will provide not only effective results, but results that will last a long time because it will allow the aging skin to start producing collagen again. Thus your skin's wrinkles are reduced and practically erased forever.

Pamper Your Skin
Nanotechnology is used in a number of areas besides cosmetics as it has uses in energy products and medicine, as well as skin care products and emollients. These type of skin care products not only are effective in reducing dreaded aging wrinkles, but they are a luxurious way to pamper the body leaving your skin smoother and more youthful looking and feeling better than it has in a long time.

Article Source: http://www.articlesbase.com/mens-health-articles/let-nanotechnology-erase-wrinkles-and-aging-5564586.html

About the Author

Dr. Farid Mostamand, Founder of DrSkinSpa.com bring you the latest research in anti aging skin care. This month featured brands are NeoStrata and Avene

The Role of Nanotechnology in Textile Chemicals Industry

The Role of Nanotechnology in Textile Chemicals Industry


Author: Fibre2fashion


The role of nanotechnology in textile industry has accelerated with a positive momentum during the recent past years. Textile companies have been spending ample in research and development activities in order to discover appropriate products, and add innovations to their existing ones. In fact, textile industry is the first manufacturing industry to come up with finished products that are enhanced through nanotechnology-based products. Nanotechnology has versatile applications in Textile Chemicals industry in manufacturing garments with stain resistance, flame retardant finishes, wrinkle resistance finishes, moisture management, antimicrobial qualities, UV protection, and soil release properties, etc.

Fibre2fashion has got feedback from the Schoeller Technologies AG, one of the leaders in Nanofinishes from the textile industry regarding the role of Nanotechnology in textile industry.

[caption id="attachment_137" align="aligncenter" width="490"]The Role of Nanotechnology in Textile Chemicals Industry The Role of Nanotechnology in Textile Chemicals Industry[/caption]

The leaves of certain plants always stay clean, because dirt cannot adhere to the finely- structured Surfaces and is easily washed off by rain.

The natural non-stick, and cleaning process, also known as the self-cleaning effect, is permanently transferred to the textile surface by means of nanotechnology.

The result is NanoSphere an ecologically clean textile finish, developed in accordance with the bluesign standard.

Water and stains have no chance:
Water and annoying stains have no chance on textiles with a NanoSphere finish. The nanotechnology-based textile impregnation is characterized by a high level of water resistance, a natural self-cleaning effect and a durable protective function.

Advantages:

• High level of water resistance
• Naturally self- cleaning
• Durable protective function
High level of water resistance:

On NanoSphere textiles, water drops, e.g. when it is raining steadily, runoff simply and reliably
Naturally self-cleaning:

Oil, dirt and dust do not adhere to the NanoSphere surface and can be rinsed off with water.
Durable protective function:

Due to the extremely high level of abrasion resistance, the NanoSphere protective function is retained even with heavy duty use, frequent washing or cleaning.
The NanoSphere-finish when compared to other traditional textile finishes has a very high level of both wet and dry abrasion resistance.
Durable protective function:

• Normal washing or dry cleaning.
• Garments with NanoSphere finish can be washed and dry cleaned very easily.
• After 50 washing cycles the function still remains.
• Fabric softeners or dryer sheets are not recommended.
• Ironing or Tumbling.
• Heat and ironing recommended for optimum function.

NanoSphere is based on blue sign standard:

This NanoSphere technology is based on the blue sign standard, and guarantees the highest possible exclusion of substances which are harmful to human so the environment and promotes the economical use of resources in manufacturing.
• Elimination of all problematic substances
• Nano particles are fixed into a coating matrix.
• First class hygienic working conditions.

NanoSphere advantages at a glance:

• Uniquely repels water and stains.
• High level of abrasion resistance.
• NanoSphere offers reliable protection and lots of comfort
• The function is maintained even after numerous washing or cleaning cycles.
• NanoSphere can be applied on all types of textiles (cotton, synthetics etc.)
• Look, feel and breath ability are not affected.
• Ecologically clean textile finish developed in accordance with the bluesign standard.

Article Source: http://www.articlesbase.com/business-articles/the-role-of-nanotechnology-in-textile-chemicals-industry-392352.html

About the Author

Fibre2Fashion.com - Leading B2B Portal and Marketplace of Global Textile, Apparel Fashion & Retail Industry, Also Provides complete information on Textile Dyes industries through products, Articles, News, Jobs, and Events.

Monday, March 5, 2012

Nanotechnology Opportunity in Food and Drinks Packaging

The Nanotechnology Opportunity in Food and Drinks Packaging


NEW YORK, Jan. 23, 2012  /PRNewswire/ --  Reportlinker.com announces that a new market research report is available in its catalogue:

The Nanotechnology Opportunity in Food and Drinks Packaging

http://www.reportlinker.com/p0762851/The-Nanotechnology-Opportunity-in-Food-and-Drinks-Packaging.html#utm_source=prnewswire&utm_medium=pr&utm_campaign=Packaging

Nanotechnology has many potential applications in food and drinks packaging, particularly in beverages, meat, poultry, vegetables, and fruit. Nanotechnology adds extra barrier properties to help prevent spoilage for longer. New developments are also increasing the functionality of nanotechnology, helping to create packaging that can detect when food has been spoiled or contaminated.Identify the leading players in the nanotechnology packaging market.Analyze the leading technological developments in the sector.Analyze the core opportunities and challenges within the sector.Help to identify the current state of the market and make predictions on where the market is going.Which packaging sectors stand to benefit most from nanotechnologyThe development of plastics incorporating nanocomposites, which act as a barrier for gases, has meant that manufacturers can start to use plastic instead of other expensive and heavyweight packaging types. Nanoclays work with standard materials to enhance packaging quality, making it stiffer, tougher, more flexible, or enhancing barrier properties.Cost is an issue. The limited number of companies involved in the nanotechnology packaging industry means that there is little competition and less incentive to lower product prices. Equally, the products are currently produced on a much smaller scale than traditional packaging materials, and therefore they do not benefit from economies of scale.With much discussion surrounding nanotechnology, particularly concerning its potential effect on human health, some form of legislation may be enacted in the near future, particularly for nanomaterials that come into contact with consumer products such as food, or food packaging, potentially causing delays in getting products to market.What are the major new nanotechnology developments impacting the packaging sector?How will the packaging sector be impacted by nanotechnology?Which companies are set to gain most from developments in this sector?What are the major obstacles to be overcome for better commercialization rates?What technology areas offer the most promise for packaging companies?

EXECUTIVE SUMMARY

•Introduction to nanotechnology•Drivers and inhibitors for nanotechnology in packaging•Current uses in food and drinks packaging•Emerging uses in food and drinks packaging•The future of nanotech in food and drinks packagingIntroduction to nanotechnology•Summary•Introduction•History of the technology involved•Major market players•Main nanotechnology applications in packaging•Regulatory and legal overview•Size of the nanotechnology sectorDrivers and inhibitors for nanotech in packaging•Summary•Introduction•Potential market drivers- Enhanced functionality- Greatly enhanced barrier properties to oxygen, CO2, moisture- 'Smart' packaging can enhance food safety- Close monitoring can reduce product spoilage- TTIs and RFID allow 'track and trace' across product and retail cycles- More functional packaging can be used in smaller quantities- Lighter packs and longer shelf lives can lower costs•Current market inhibitors- Technology still considered unproven- Consumers distrust nano-ingredients- Regulation has lagged behind innovation- Long-term effects on human health are as yet unlogged- Bringing nano-enhanced packaging to market is expensive- Lead times from R&D to shelf are long- New legislation could restrict potentialCurrent uses in food and drinks packaging•Summary•Introduction•Types of nanopackaging technology•Applications in oxygen scavenging- NanoBioMatters- ColorMatrix- Honeywell- Mitsubishi Gas Chemical- Tokyo Seikan•Applications in other absorbers•Applications in antimicrobials•Applications in coatings•Applications for nanocelluloseEmerging uses in food and drinks packaging•Summary•Introduction•Key issues in emerging food and drinks nanotech research- Delays in development- Consumer backlash- Shift in R&D spend to the public sector•Leading emerging food and drinks packaging nanotech areas- Sensor/indicator technology- Paperboard and coatings- Plastics and biocomposites- Lightweighting- Other emerging areasThe future of nanotech in food and drinks packaging•Summary•Introduction•Government funding will shift to developing economies•Commercialization will be the key challenge•Food safety is a key focus for medium-term development•Cost-efficiency will slowly improve•Emerging products will provide more compelling benefitsAppendix•Bibliography and references- Chapter 2- Chapter 3- Chapter 4- Chapter 5•Key abbreviations

TABLES

•Table: Main types of nanotechnology

•Table: Leading companies using nanotech packaging materials

•Table: Total R&D expenditure for key companies active in nanotech, 2010

•Table: Estimated time-to-market for nanotechnology technology in the agrifood sector

•Table: Recent nanotechnology developments in China

•Table: Focus areas of government investment in nanotechnology for selected countries

•Table: Traditional and nanocomposite lifecycle costing for polypropylene packaging film

FIGURES

•Figure: Timeline of major nanotechnology products•Figure: Potential applications for nanotechnology in packaging•Figure: Diagram of tortuous path in nanocomposite packaging•Figure: Example of PET bottles using nanocomposites (nanoclays)•Figure: Example of intelligent inks used in fresh food packaging•Figure: Example of time temperature indicator•Figure: ObservatoryNANO's TRL Scheme•Figure: Hite's plastic beer bottle using Honeywell's oxygen scavenging range•Figure: Tokyo Seikan's SiBARD oxygen-scavenger PET bottle•Figure: Kinetic Go Green Premium Nano Silver food containers•Figure: Main areas of research in packaging nanotechnology•Figure: Key applications for sensor nanotechnology in packaging•Figure: Freshpoint's OnVu system uses nanotech to provide TTI solutions•Figure: ColorMatrix's Joule RHB reduces yellowing associated with PET recycling•Figure: RFID tag example using nanotechnology•Figure: Total US nanotechnology funding ($ bn), 2001-2010•Figure: Total patent applications for nanotechnology packaging 2001-2011

Companies mentioned

Admiral Group plc, Amer Sports Corporation, Arriva plc, CMS Energy Corporation, Devoteam SA, Hutchison 3G UK Limited, Informa plc, Nordea Bank AB, Schindler Holding Ltd., TNS, Inc., Videocon Industries Ltd., Wolters Kluwer nv

To order this report:Packaging IndustryThe Nanotechnology Opportunity in Food and Drinks Packaging

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Nanophysics Breakthrough Captures First-Ever Image of Charge Distribution in a Single Molecule

IBM Research Nanophysics Breakthrough Captures First-Ever Image of Charge Distribution in a Single Molecule


-- Scientists use special kind of atomic force microscopy at low temperatures and in ultrahigh vacuum to image the charge distribution within a single molecule


-- The new technique will further the understanding of nanoscale physics and could help develop future applications such as solar photoconversion, energy storage, or molecular scale computing devices


ZURICH, Feb. 27, 2012 /PRNewswire/ -- IBM (NYSE: IBM) scientists were able to measure for the first time how charge is distributed within a single molecule. This breakthrough will enable fundamental scientific insights into single-molecule switching and bond formation between atoms and molecules. The ability to image the charge distribution within functional molecular structures holds great promise for future applications such as solar photoconversion, energy storage, or molecular scale computing devices.

Flickr Gallery: http://www.flickr.com/photos/ibm_research_zurich/sets/72157629144258045/

(Logo:  http://photos.prnewswire.com/prnh/20090416/IBMLOGO )

As reported recently in the journal Nature Nanotechnology, scientists Fabian Mohn, Leo Gross, Nikolaj Moll and Gerhard Meyerof IBM Research succeeded in imaging the charge distribution within a single molecule by using a special kind of atomic force microscopy called Kelvin probe force microscopy at low temperatures and in ultrahigh vacuum.

"This work demonstrates an important new capability of being able to directly measure how charge arranges itself within an individual molecule," states Michael Crommie, Professor in the Department of Physics at the University of California, Berkeley. "Understanding this kind of charge distribution is critical for understanding how molecules work in different environments. I expect this technique to have an especially important future impact on the many areas where physics, chemistry, and biology intersect."

The new technique provides complementary information about the molecule, showing different properties of interest. This is reminiscent of medical imaging techniques such as X-ray, MRI, or ultrasonography, which yield complementary information about a person's anatomy and health condition.

The discovery could be used to study charge separation and charge transport in so-called charge-transfer complexes. These consist of two or more molecules and hold tremendous promise for applications such as computing, energy storage or photovoltaics.  In particular, the technique could contribute to the design of molecular-sized transistors that enable more energy efficient computing devices ranging from sensors to mobile phones to supercomputers.

"This technique provides another channel of information that will further our understanding of nanoscale physics. It will now be possible to investigate at the single-molecule level how charge is redistributed when individual chemical bonds are formed between atoms and molecules on surfaces," explains Fabian Mohn of the Physics of Nanoscale Systems group at IBM Research – Zurich. "This is essential as we seek to build atomic and molecular scale devices."

Gerhard Meyer, a senior IBM scientist who leads the scanning tunneling microscopy (STM) and atomic force microscopy (AFM) research activities at IBM Research – Zurich adds, "The present work marks an important step in our long term effort on controlling and exploring molecular systems at the atomic scale with scanning probe microscopy."

For his outstanding work in the field, Meyer recently received a European Research Council Advanced Grant. These prestigious grants support "the very best researchers working at the frontiers of knowledge" in Europe.*

Taking a closer look

To measure the charge distribution, IBM scientists used an offspring of AFM called Kelvin probe force microscopy (KPFM).

When a scanning probe tip is placed above a conductive sample, an electric field is generated due to the different electrical potentials of the tip and the sample. With KPFM this potential difference can be measured by applying a voltage such that the electric field is compensated. Therefore, KPFM does not measure the electric charge in the molecule directly, but rather the electric field generated by this charge. The field is stronger above areas of the molecule that are charged, leading to a greater KPFM signal. Furthermore, oppositely charged areas yield a different contrast because the direction of the electric field is reversed. This leads to the light and dark areas in the micrograph (or red and blue areas in colored ones).

Naphthalocyanine, a cross-shaped symmetric organic molecule which was also used in IBM's single-molecule logic switch**, was found to be an ideal candidate for this study. It features two hydrogen atoms opposing each other in the center of a molecule measuring only two nanometers in size. The hydrogen atoms can be switched controllably between two different configurations by applying a voltage pulse. This so-called tautomerization affects the charge distribution in the molecule, which redistributes itself between opposing legs of the molecules as the hydrogen atoms switch their locations.

Using KPFM, the scientists managed to image the different charge distributions for the two states. To achieve submolecular resolution, a high degree of thermal and mechanical stability and atomic precision of the instrument was required over the course of the experiment, which lasted several days.

Moreover, adding just a single carbon monoxide molecule to the apex of the tip enhanced the resolution greatly. In 2009, the team has already shown that this modification of the tip allowed them to resolve the chemical structures of molecules with AFM. The present experimental findings were corroborated by first-principle density functional theory calculations done by Fabian Mohn together with Nikolaj Moll of the Computational Sciences group at IBM Research – Zurich.

The scientific paper entitled "Imaging the charge distribution within a single molecule" by F. Mohn, L. Gross, N. Moll, and G. Meyer was published online in Nature Nanotechnology, DOI: 10.1038/NNANO.2012.20 (26 February 2012).

* cited from the ERC press release, January 24, 2012:http://erc.europa.eu/sites/default/files/press_release/files/press_release_adg2011_results.pdf

** P. Liljeroth, J. Repp, and G. Meyer, "Current-Induced Hydrogen Tautomerization and Conductance Switching of Naphthalocyanine Molecules", Science 317, p.1203–1206 (2007), DOI: 10.1126/science.1144366

Christopher P. Sciacca
Manager, Communications
IBM Research - Zurich
office  +41 44 72 48 443
cia@zurich.ibm.com

Michael Loughran
IBM Research
914-945-1613
mloughra@us.ibm.com

SOURCE IBM

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Sunday, February 5, 2012

Five Ways Nanomanufacturing Improves Manufacturing Today

SME’s NanoManufacturing Conference and Exhibits, March 27-28, Boston, will highlight the current and near-term applications of nanotechnology and how they are transforming manufacturing.


Dearborn, MI (PRWEB) January 17, 2012

Nanomanufacturing is no longer the next frontier. It’s in action today, and it is improving products and processes and saving manufacturers money along the way.

This March, nanomanufacturing experts will be gathering in Boston to share their knowledge with other manufacturing professionals at the NanoManufacturing Conference and Exhibits organized by the Society of Manufacturing Engineers. In addition to discussions on mid- to long-term applications of this smallest of technologies, there will be information on how it is already impacting the industry as evidenced in these five ways.

1)    Materials – Nanotechnology is creating exceptionally light, yet extremely tough, materials, such as graphene. Nano composites are uniquely customizable to adhere to other materials. They are currently used in golf clubs and tennis rackets, with expectations that they will transform the aerospace, defense and transportation industries in the not-too-distant future.

2)    Coatings – Nanotechnology is enabling coatings to have numerous beneficial properties that are proving very marketable. Nanocoatings are known to be a thermal barrier, flame retardant, ultraviolet resistance, self and easy cleaning, wear resistant, friction reducing, corrosion resistant, anti-scratch resistance, antibacterial and anti-fingerprint. They can even be self healing. Nanocoatings are used in myriad industries including automotive, defense, household cleaners, construction and exterior protection, with a very promising future in many more fields.

3)    Energy Collection and Storage – Surface-to-volume ratios give nano particles most of their power. For example, a golf ball by volume equals the surface of a playing card. That same golf ball by nano particles has a surface area equivalent to four football fields. These particles use light more efficiently which is improving the efficiency and cost of solar panels.

4)    Lighting – Quantum dots are nanoparticles of a semiconductor material with unique optical and electrical properties. A manufacturer can precisely control the size of a quantum dot to determine the color of light emitted. In addition to enabling the manufacturing of LED lights, quantum dots are used in electroluminescent displays and solid-state lighting.

5)    Manufacturing Processes – Self-assembly is a branch of nanotechnology in which objects, devices and systems form structures without external prodding. Biological systems use self-assembly to construct various molecules and structures. Think of it as LEGOS® that assemble themselves. This process is currently being used in computer chips, and has potential benefits for water purification, sanitation, agriculture, alternative energy and medicine.

“More than 1,300 products have already made it to market using nanotechnology, with many more in the pipeline,” said Lauralyn McDaniel, the conference manager. “This conference provides an opportunity for manufacturers from almost any industry to either be introduced to nanomanufacturing or discover the latest advances in the technology.”

The NanoManufacturing conference is co-located with the MicroManufacturing Conference and Exhibits. Both events have been designed based on feedback attendees have given that the most valuable part of attending an SME conference is the people they meet and the resources they gain. To encourage the synchronistic collaboration, the sessions are shorter and breaks are longer, the exhibits have been arranged “in the round” to promote discussion, and the Conversation Connection areas are ideal for having in-depth conversations with colleagues. Attendees of either conference can go back and forth between the two and tailor this event to their own interests and needs.

The NanoManufacturing Conference sessions cover a broad range of topics including, metrology because “if you can’t measure it, you can’t make it,” nanostructure manufacturing techniques, the future applications of graphene in every day products, occupational and environmental health and safety concerns and antimicrobial technologies for medical devices.

Additionally, a panel of nanomanufacturing leaders will address moving from the research and development phase and prototyping to the commercialization phase and volume production. The event concludes with the annual peek into the nanocrystal ball in an attempt to predict what the next five years will bring to nanotechnology.

For those who are new to the technology, need a refresher or just want to explore the topic in more depth, pre-conference workshops and tours to iRobot® and the Center for High-rate Nanomanusturing/Kostas Nanomanufacturing Research Center are also available.

For more information, visit http://www.sme.org/nanomanufacturing or for the MicroManufacturing Conference and Exihibition, visit http://www.sme.org/micro.

About SME:
The Society of Manufacturing Engineers (SME) is the premier source for manufacturing knowledge, education and networking. Through its many programs, events, magazines, publications and online training division, Tooling U, SME connects manufacturing practitioners to each other, to the latest technologies and to the most up-to-date manufacturing processes. SME has members around the world and is supported by a network of chapters and technical communities. A 501(c)3 organization, SME is a leader in manufacturing workforce development issues, working with industry, academic and government partners to support the current and future skilled workforce.

Source: http://www.prweb.com/releases/2012/1/prweb9112517.htm

Thursday, February 2, 2012

Nanotechnology : The Science of the Small


Nanotechnology - The Science of the Small



By Arthur Chip Card


Could the local water works be harnessed to fuel your car? Scientists think they just may. Researchers at Sandia National Labs intend to complete development of a prototype solar cell that will convert plain water into combustible fuel! They have already demonstrated concept feasibility. Such cells, along with water, could replace oil as an automotive fuel of choice. Is this for real? How is it possible?

Water is number one fighting fires. But what if we break it down into its component parts? You remember science class, right? That's where they taught us water is made up of 2 atoms of hydrogen combined with a single atom of oxygen. Hydrogen, the most abundant element on earth, is highly explosive. Oxygen is necessary for any type of combustion. In their singular states the components of water are a burning recipe for fuel.

Sandia scientists have also developed a robot that can move, pick up, and drop a payload. Not a big deal you say? What if I told you that 20 of these androids can stand side-by-side across the width (not length) of a human hair; impressed now? Called 'motor proteins' these soldiers can be designed to seek each other out and self-assemble in predictable patterns. Nature self-assembles everything in predictable patterns, both flora and fauna. We are just now beginning to learn mother's secrets.

THE SCIENCE OF THE SMALL

Hail the world of Nano-technology, the science of the small. You'll be hearing this word "nano" a lot. From the Greek word for dwarf, you just can't get any smaller. How small? Well, it would take 80,000 nano-meters to equal the width of that human hair we just discussed. Now that's small.

This science allows us to manipulate at the atomic level for the first time.

Re-arrange the atoms of water, dirt and air, and we can create rice, or corn. If we re-arrange the atoms of coal, we can create diamonds. Or should I say, this is being done, now! Boston based Apollo Diamonds creates what it calls 'cultured diamonds' that are virtually "indistinguishable" from mined diamonds. They are real. Jewelers can't tell the difference!

Diamonds are a $60 billion industry annually. This technology promises to lower the price of diamonds by at least a third initially. What implications does this have for the tightly held global diamond trade? Can gold be far behind? And will this have implications for currency exchange?

Amazingly a survey of U.S. adults found more than half confessing no knowledge of nanotechnology at all. Only 16% of those surveyed claim "some" familiarity with the topic. Observers of nanotechnology disagree as to whether or not this is a single industry. But none disagree on the effect it will ultimately have on our lives, indeed on the very length of our lives.

THE FOUNTAIN OF YOUTH?

Just as we now have synthetic motor oils, soon we will be able to create synthetic red and white blood cells, even replacements for ailing organs.

The implications for medicine and for life are enormous. Nanotechnology and medicine will be one and the same. And we may not have long to wait. In 2003, an NYU professor shared a top ten list of hurdles nanotechnology would have to surmount to be fully viable. In just the past three years, three of these ten have been conquered.

Some of the greatest potential lies in gene therapy. Nano-genes will replace diseased ones with genetically correct copies eliminating genetic based diseases. Eventually we can even reverse the effects of cell damage attributed to aging. This could increase human life expectancy tenfold! Do you think this is science fiction? Read on!

The Methuselah Foundation encourages research into the causes and control of aging. They award prizes for research in this area. Transgenic mice have already been developed to possess higher than usual levels of the antioxidant enzyme 'catalase.' Cells employ catalase to eliminate free radicals which cause cell damage resulting in aging, as well as cancers. The genetically corrected mice have life spans 20% longer than their control mice brethren. Imagine adding 15 or 20 healthy years to your life!

Nano-bacteria could clear blood-borne infections in minutes rather than the weeks it takes for antibiotics. Scientists at NEC are reportedly developing a fast 'bio-nano' chip to conduct a complete blood analysis in little more than 60 minutes. (Today's med labs utilizing gel blocks take many more hours). Their chip recognizes proteins known to be present before a disease manifests itself. These diagnostic nano-grains bind with targeted proteins, causing an intended signal reaction. If trials go well, they'll be in use within 5 years. Comprehensive health assessments utilizing this nano-technology could cost as little as $100.

Chemotherapy involves poisoning a patient's body with toxic medication in a race to kill cancer cells before the cancer kills the patient. Serious side effects come from the solutions used to dilute the cancer killing agents. Nano-medicines have very high surface to volume ratios, resulting in far fewer and milder side effects. Greater tolerance for these nano-oncologics allow for dense doses delivered at tighter intervals.

Nobel Prize winning chemist Rick Smalley (1943-2005) was fond of posing the question, "Am I living in the last generation to die of cancer, or the first generation to be saved by nanotechnology?" We're that close!

SUPER COMPUTERS

Nano-materials promise computers running 200 times faster than today's swiftest chips. Researchers at the University of Illinois have already fabricated such nano-processors. Employing current technology a micro-chip grows more crowded to run at ever faster speeds, the heat generated threatens to melt the entire silicon based circuit.

The ability to immediately absorb and process vast amounts of data creates opportunities only imaginable previously: significant increases in reaction times for defense systems; the allocation of road/air space for traffic management; even preventing autos from colliding with each other.

MATERIALS FIRST

While the greatest ultimate impact comes from the fields of medicine and biology, it is in materials and chemicals that the first fruits are being picked. Everything can be made better through restructuring, or nano-structuring: lighter, stronger, cheaper. Materials that don't exist can be created with new and unique properties. As the initial cost of these materials falls, broader uses will naturally result.

Tennis rackets and golf clubs on the market today from both Wilson and Babolat are now twice as strong. Motorola is reportedly developing a 40" HDTV flat screen using nano-materials that will retail for only $400. Rechargeable batteries that take only one minute to regain 80% capacity have been invented by Toshiba. The unique properties of the nano-materials used rapidly accept the charge without any deterioration to the electrode. A planned launch will target hybrid autos. But this technology applies equally to your cell phone and laptop. How long does it take to recharge these now?

In the nanotech world, if you can imagine it, you can create it: automotive panels that won't dent; paints that won't scratch, peel, or fade; sunscreens that truly are; stain-proof fabrics that actually change shade for body temperature control; odorless disposable diapers; fire-proof building materials. The future is bright indeed.

INVESTORS GUN SHY

More than 30 nations have provided seed funding to ensure their people aren't left behind. The U.S. Nanotechnology Initiative was funded to the tune of $800 million in 2004 alone. The federal allocation is now over $1 billion annually. Forward looking states are jockeying to lure Nano-companies, carroting of course with tax breaks.

Despite all this opportunity, investors still reeling from the dot-com days, are sticking to the sidelines, 'cept some far sighted venture capitalists. Smelling potential, private investment flows are now three times greater than the federal outlay.

In the dot-com days all it took to offer an IPO was a desk top PC and a carefully worded business plan determined to take advantage of the "information synergies paradigm." Not so with nanotechnology. This requires real multi-discipline scientific know how from extensive research and testing. These inventions and innovations are clearly patentable. To date some 3,800 patents have been granted with another 1,700 pending. No college dorm room operations here.

As you can imagine the potential for investors in the right places are colossal. But be careful, some companies are adding 'nano' to their name whether they have anything to do with it or not. Where the money is, so too will be the tricksters.

Arthur "Chip" Card is a Marketing Strategist with more than 20 years experience marketing financial services and intangibles. He has taught Marketing Management and Quantitative Methods at a Jesuit College, and earned his Marketing MBA at Boston College. His marketing articles have appeared in regional, national, and international business journals. He can be reached by email at: a.card@comcast.net

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Nanotechnology and Cancer

Nanotechnology and Cancer


By Parmu Malika


Nanotechnology is the study and creation of structures at a molecular level; the engineering of complex machines at the level of molecules, which can only be measured in nanometers, one nanometer being about a billionth of one meter. To illustrate, the size of one strand of human hair is between 50,000 and 100,000 nanometers.

Research in the field of nanotechnology has been growing by leaps and bounds over the past few years, though the technology is still only in its nascent stage. It has found usage in every possible field including electronics, power generation and biomedical devices. The possible applications of nanoscale devices in the field of medicine are mind-boggling and make one wonder if they are caught in the middle of a science fiction movie. Let us explore the possibilities opened up by nanotechnology in one particular aspect of the vast field of medicine, namely, the diagnosis and treatment of cancer.

Why Nanotechnology in Cancer?


As discussed before, nanoscale devices can only be measured at the molecular level; they are in fact, between a hundred to ten thousand times smaller than an average cell in the human body. Their size can be compared to naturally occurring molecules such as enzymes, which are known as biomolecules. To illustrate, the size of hemoglobin, the molecule that is responsible for delivering oxygen to the red blood cells in our body, is around 5 nm in diameter.

Nanoscale devices that measure less than 50 nm are small enough to enter most of the cells in the human body, while those smaller than 20 nm can move in and out of blood vessels. Due to their extremely small size that allows them to move in and out of various areas of the human body, nanoscale devices are capable of effortlessly interacting with various biomolecules that exist on the surface of, as well as inside the cells. And, since all biological processes, most importantly those that have been found to lead to various types of cancer, occur inside cells at a nanoscale level, nanotechnology is equipping cancer researchers with incredible new ways to detect and deliver treatment for cancer that were unimaginable just a few years ago.

The Possibilities

Nanotechnology is aiding the development of various nanoscale devices that can help bring a radical change in the diagnosis and treatment of cancer. It is helping to develop imaging agents and other diagnostic tools that can help accurately pinpoint the development of cancer at the earliest possible stage. It can lead to the development of nano-agents that are capable of scrutinizing changes in the molecular level and help in the prevention of malignancy of pre-cancerous cells.

Nano systems that can offer real-time assessment of the efficacy of treatment procedures such as surgery, thereby assuring accelerated and accurate clinical translation are also being researched upon. Another hot area of nano research is the development of multifunctional nano devices that are capable of overcoming biological barriers and gaining direct access to cancer cells and the surrounding tissues that aid in the development of cancer to deliver multiple therapeutic agents for efficient and targeted treatment. Research is also on to develop suitable nano techniques that will assist in the management of the adverse symptoms of cancer.

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Carbon Nanotechnology and Tissue Engineering

Carbon Nanotechnology and Tissue Engineering



By Jon F Cook


Carbon nanotechnology is quickly changing our lives like no other time in history. One day carbon nano-materials will enable us to live longer more productive lives through tissue engineering. This will enable us to basically order parts, such as, kidneys, stomachs, hearts, lungs, and even brains. When ever a body part wears out or becomes cancerous it will be replaced by tissue that was engineered through carbon nanotechnology. We will explore some of the amazing things that have already transgressed concerning tissue engineering, what we can look forward to in the future, if this is going against god, and when will it be going to far.

One amazing breakthrough announced recently was the engineering of spinal cord receptor tissue. This is the tissue that is damaged when someone has a spinal cord injury. It is the tissue that sends the messages from the brain down the spinal cord to give instructions on movement. It is thought that through carbon nanotechnology this tissue can be fined tuned and injected into a spinal cord victims area of injury. This tissue may grow and link with the undamaged receptors thus completing the link. With the spinal cord receptor tissue intact it will be able to transmit the messages from the brain for your legs to walk. This is all being developed with carbon nano-materials and nanotechnology.

Other tissue engineering projects now being tested are growing and developing of lung and heart tissue. One day you may be able to have a heart or lungs grown and stored at a tissue farm. When you are in need of a transplant because of disease or a car accident it will be ready for transplant. These tissue engineering farms will rely on carbon nano-materials for the growth and development of transplants. Carbon nanotechnology will become an established and growing field in years to come.

Our life expectancy will change drastically with the use of carbon nanotechnology and tissue engineering. Some people think we may be able to live forever. If you believe in God, as I do, is this going against him. I do not think so. All throughout the bible people are said to live hundreds of years, a good example is Methuselah, who lived to be 969 years old. I also do not think it is us that is creating life, God is giving us exceptionally smart scientists with a drive for knowledge. This knowledge, along with the application of carbon nanotechnology will hopefully benefit all of mankind.

In the future, with carbon based nano-materials and carbon based nanotechnology, will we have stronger, faster athletes? We we be able to tissue engineer hearts and lung that are bigger? Will this create a super race of humans? One with almost super human power like being able to run faster and farther, jump higher, and hit a baseball farther than anyone has ever done. Will athletes be tested for engineered parts, like they are now being tested for steroids. One can only imagine, but with the use of carbon based nanotechnology tissue engineering there may be no limits.

http://www.small-townmarketing.com is a full service SEO company that focuses on local or geo targeted keywords and content that get's you results that produce quality traffic to your site. We offer SEO, website design, article marketing, quality link-building, and content writing. http://www.carbonnanomaterials.com is dedicated to the exploration of carbon based nanotechnology and informing the public in lay terms of the future we may be looking at with the use of carbon nano-materials.

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Wednesday, November 9, 2011

Excellence of Nanotechnology varied uses

Excellence of Nanotechnology, Protective coatings, Shower Enclosures


Author: nathansyngrem


Nanotechnology has varied uses. The one we shall be talking about in this article is the Nanotechnology that is used to protect and act as a shield for glass, tiles, porcelain, granite and most silica-based surfaces. With Nanotechnology the surface becomes much cleaner, stronger in terms of oil, water, bacteria repellent and other contaminants. Nanotechnology makes the surface scratch resistant and impact resistant. Through Nanotechnology discoveries at molecular scale are made to work for the benefit and betterment. Right from the very beginning, Nanotechnology has gained momentum for the incredible output and results. With the growing research and experiments the molecular world of Nanotechnology is advancing speedily.

Different companies offer the service of Nanotechnology. Choose your service provider as per the work they have done and the success rate of the company. The offering must way ahead of other competitors and should specifically be crafted to meet the dynamic requirements of clients and customers. Nanotechnology acts as a protection and improves the overall performance of the object. It also increases the life of the object by functioning as a guard.

Nanotechnology offers Protective Coatings that works as a shield and guard the surface from anything that can affect the normal functioning of the element. Protective Coatings can be applied to end number of items and products. The foremost functionality of Protective Coatings is to restore and improve the condition of the product for a prolonged period of time. The items with Protective coatings last longer than the ones without any coating.

Protective Coatings offered by nanotechnology also ensure a smooth and shining finish that also provides durability, reliability and safety. Pick the one that offers the most advanced Protective Coatings that guarantee long-lasting results. Protect your products and valuable items with our Protective Coatings and enjoy the power pact performance of your valued product for a very long time and invest in the right solution at affordable pricing.

Shower Enclosures is also provided by various companies that are very easy to clean with the help of single application lasting for year. Forget the daily Shower Enclosures cleaning and just splash plain water and get the Shower Enclosures as clean and sparkling as ever. Now stop worrying and enjoy the benefits of crystal clear Shower Enclosures.

Article Source: http://www.articlesbase.com/industrial-articles/excellence-of-nanotechnology-protective-coatings-shower-enclosures-2311049.html

About the Author

I have written many articles. But my field of interest is to write for the practical application practiced in industries for manufacturing products. I have written article on Protective coatings and Shower Enclosures.

Nathan Syngrem
1046 Calle Recodo, Suite F San Clemente, California 92673, USA.

Monday, August 1, 2011

Welcome to Nanotechnology Australia

Welcome to Nanotechnology Australia


A Nanotechnology website with basics, issues, news and information. Here you can learn about the nanotechnology and develop the knowledge on Nanomedicine, Nanoelectronics, Nanotubes, Nanoscale Materials, Nanomechanics , Nanophotonics & Nanocrystal.

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