Monday, June 30, 2008

Functional Self-Assembled Nanofibers by Electrospinning


A. Greiner1 and J. H. Wendorff1 Contact Information

(1) Department of Chemistry and Center of Material Science, Philipps-University, 35032 Marburg, Germany

Abstract Electrospinning constitutes a unique technique for the production of nanofibers
with diameters down to the range of a few nanometers. In strong contrast to conventional
fiber producing techniques, it relies on self-assembly processes driven by the Coulomb interactions
between charged elements of the fluids to be spun to nanofibers. The transition
from a macroscopic fluid object such as a droplet emerging from a die to solid nanofibers
is controlled by a set of complex physical instability processes. They give rise to extremely
high extensional deformations and strain rates during fiber formation causing among
others a high orientational order in the nanofibers as well as enhanced mechanical properties.
Electrospinning is predominantly applied to polymer based materials including
natural and synthetic polymers, but, more recently, its use has been extended towards
the production of metal, ceramic and glass nanofibers exploiting precursor routes. The
nanofibers can be functionalized during electrospinning by introducing pores, fractal
surfaces, by incorporating functional elements such as catalysts, quantum dots, drugs,
enzymes or even bacteria. The production of individual fibers, random nonwovens, or
orientationally highly ordered nonwovens is achieved by an appropriate selection of electrode
configurations. Broad areas of application exist in Material and Life Sciences for
such nanofibers, including not only optoelectronics, sensorics, catalysis, textiles, high efficiency
filters, fiber reinforcement but also tissue engineering, drug delivery, and wound
healing. The basic electrospinning process has more recently been extended towards compound
co-electrospinning and precision deposition electrospinning to further broaden
accessible fiber architectures and potential areas of application.
Keywords Co-electrospinning · Electrospinning · Fiber architectures · Functions and applications · Nanofibers · Nonwovens · Precision electrospinning



Paper Reference: http://www.springerlink.com/content/v80076257623ul64/fulltext.pdf

Fabrics made of functional nanofibers that would decompose toxic industrial chemicals into harmless byproducts.

Cornell fiber scientist Juan Hinestroza is working with the U.S. government to create fabrics made of functional nanofibers that would decompose toxic industrial chemicals into harmless byproducts.

Potential applications include safety gear for U.S. soldiers and filtration systems for buildings and vehicles.

Hinestroza, assistant professor of fiber science in the College of Human Ecology, is a member of two teams that secured more than $2.2 million from the U.S. Department of Defense;

about $875,000 will go directly to Hinestoza's work. Both grants are multi-university collaborative efforts funded through the U.S. Defense Threat Reduction Agency.

"These nanostructures could be used in creating advanced air filtration and personal protection systems against airborne chemical threats and can find many applications in buildings, airplanes as well as personal respirators," Hinestroza said.

The first project, in collaboration with North Carolina State University, is aimed at understanding how very small electrical charges present in fibers and nanofibers can help in capturing nanoparticles, bacteria and viruses.

"Understanding how these charges are injected into the fibers and how they are dissipated under different environmental conditions can open an avenue to significant improvements in air filtration technology," Hinestroza said.

The position and distribution of the electrical charges on the nanofibers will be fed into computerized fluid dynamics algorithms developed by Andrey Kutznetsov of NC State to predict the trajectory of the nanoparticles challenging the filter. Hinestroza and NC State's Warren Jasper pioneered work in this area a couple of years ago.

The second project, in collaboration with the University of California-Los Angeles (UCLA), will study the incorporation of a new type of molecules -- called metal organic polyhedra and metal organic frameworks -- onto polymeric nanofibers to trap dangerous gases as toxic industrial chemicals and chemical warfare agents, then decompose them into substances that are less harmful to humans and capture them for further decontamination. The synthesis of these molecules was pioneered by Omar Yaghi of UCLA.

This project will also look into the potential toxicity of these nanofiber-nanoparticle systems to humans in collaboration with Andre Nel from UCLA Medical School.

Hinestroza's research group specializes in understanding and manipulating nanoscale phenomena in fiber and polymer science. Related Information: Hinestroza Research Group

By Sheri Hall assistant communications director for the College of Human Ecology. Contact: Blaine Friedlander bpf2@cornell.edu 607-254-8093. Cornell University Communications

Cornell Chronicle: Susan Lang (607) 255-3613 ssl4@cornell.edu, Media Contact: Press Relations Office (607) 255-6074 pressoffice@cornell.edu

Friday, June 27, 2008

On The Boil: New Nano Technique Significantly Boosts Boiling Efficiency

ScienceDaily (June 27, 2008) — Whoever penned the old adage “a watched pot never boils” surely never tried to heat up water in a pot lined with copper nanorods. 


A new study from researchers at Rensselaer Polytechnic Institute shows that by adding an invisible layer of the nanomaterials to the bottom of a metal vessel, an order of magnitude less energy is required to bring water to boil. This increase in efficiency could have a big impact on cooling computer chips, improving heat transfer systems, and reducing costs for industrial boiling applications.

“Like so many other nanotechnology and nanomaterials breakthroughs, our discovery was completely unexpected,” said Nikhil A. Koratkar, associate professor in the Department of Mechanical, Aerospace, and Nuclear Engineering at Rensselaer, who led the project. “The increased boiling efficiency seems to be the result of an interesting interplay between the nanoscale and microscale surfaces of the treated metal. The potential applications for this discovery are vast and exciting, and we’re eager to continue our investigations into this phenomenon.” 

Bringing water to a boil, and the related phase change that transforms the liquid into vapor, requires an interface between the water and air. In the example of a pot of water, two such interfaces exist: at the top where the water meets air, and at the bottom where the water meets tiny pockets of air trapped in the microscale texture and imperfections on the surface of the pot. Even though most of the water inside of the pot has reached 100 degrees Celsius and is at boiling temperature, it cannot boil because it is surrounded by other water molecules and there is no interface  — i.e., no air — present to facilitate a phase change. 

Bubbles are typically formed when air is trapped inside a microscale cavity on the metal surface of a vessel, and vapor pressure forces the bubble to the top of the vessel. As this bubble nucleation takes place, water floods the microscale cavity, which in turn prevents any further nucleation from occurring at that specific site. 

Koratkar and his team found that by depositing a layer of copper nanorods on the surface of a copper vessel, the nanoscale pockets of air trapped within the forest of nanorods “feed” nanobubbles into the microscale cavities of the vessel surface and help to prevent them from getting flooded with water. This synergistic coupling effect promotes robust boiling and stable bubble nucleation, with large numbers of tiny, frequently occurring bubbles.

“By themselves, the nanoscale and microscale textures are not able to facilitate good boiling, as the nanoscale pockets are simply too small and the microscale cavities are quickly flooded by water and therefore single-use,” Koratkar said. “But working together, the multiscale effect allows for significantly improved boiling. We observed a 30-fold increase in active bubble nucleation site density — a fancy term for the number of bubbles created — on the surface treated with copper nanotubes, over the nontreated surface.” 

Boiling is ultimately a vehicle for heat transfer, in that it moves energy from a heat source to the bottom of a vessel and into the contained liquid, which then boils, and turns into vapor that eventually releases the heat into the atmosphere. This new discovery allows this process to become significantly more efficient, which could translate into considerable efficiency gains and cost savings if incorporated into a wide range of industrial equipment that relies on boiling to create heat or steam. 

“If you can boil water using 30 times less energy, that’s 30 times less energy you have to pay for,” he said. 

The team’s discovery could also revolutionize the process of cooling computer chips. As the physical size of chips has shrunk significantly over the past two decades, it has become increasingly critical to develop ways to cool hot spots and transfer lingering heat away from the chip. This challenge has grown more prevalent in recent years, and threatens to bottleneck the semiconductor industry’s ability to develop smaller and more powerful chips. 

Boiling is a potential heat transfer technique that can be used to cool chips, Koratkar said, so depositing copper nanorods onto the copper interconnects of chips could lead to new innovations in heat transfer and dissipation for semiconductors. 

“Since computer interconnects are already made of copper, it should be easy and inexpensive to treat those components with a layer of copper nanorods,” Koratkar said, noting that his group plans to further pursue this possibility. 

Along with Koratkar, co-authors of the paper include Rensselaer MANE Associate Professor Yoav Peles; Rensselaer mechanical engineering graduate student Zuankai Wang; Rensselaer Center for Integrated Electronics Research Associate Pei-I Wang; University of Colorado at Boulder Chancellor and former Rensselaer Provost G.P. “Bud” Peterson; and UC-Boulder Assistant Research Professor Chen Li. 

The research was funded by the National Science Foundation.


Journal reference:

1.                       Li et al. Nanostructured Copper Interfaces for Enhanced Boiling. Small, 2008; NA DOI: 10.1002/smll.200700991

Adapted from materials provided by Rensselaer Polytechnic Institute.

 

Wednesday, June 18, 2008

Nanotechnology, Biomolecules And Light Unite To 'Cook' Cancer Cells

Nanotechnology, Biomolecules And Light Unite To 'Cook' Cancer Cells

ScienceDaily (Jun. 17, 2008) — Researchers are testing a new way to kill cancer cells selectively by attaching cancer-seeking antibodies to tiny carbon tubes that heat up when exposed to near-infrared light.


Biomedical scientists at UT Southwestern Medical Center and nanotechnology experts from UT Dallas describe their experiments in a study available online and in an upcoming print issue of Proceedings of the National Academy of Sciences.

Scientists are able to use biological molecules called monoclonal antibodies that bind to cancer cells. Monoclonal antibodies can work alone or can be attached to powerful anti-cancer drugs, radionuclides or toxins to deliver a deadly payload to cancer cells.

In this study, the researchers used monoclonal antibodies that targeted specific sites on lymphoma cells to coat tiny structures called carbon nanotubes. Carbon nanotubes are very small cylinders of graphite carbon that heat up when exposed to near-infrared light. This type of light, invisible to the human eye, is used in TV remote controls to switch channels and is detected by night-vision goggles. Near-infrared light can penetrate human tissue up to about 1½ inches.

In cultures of cancerous lymphoma cells, the antibody-coated nanotubes attached to the cells' surfaces. When the targeted cells were then exposed to near-infrared light, the nanotubes heated up, generating enough heat to essentially "cook" the cells and kill them. Nanotubes coated with an unrelated antibody neither bound to nor killed the tumor cells.

"Using near-infrared light for the induction of hyperthermia is particularly attractive because living tissues do not strongly absorb radiation in this range," said Dr. Ellen Vitetta, director of the Cancer Immunobiology Center at UT Southwestern and senior author of the study. "Once the carbon nanotubes have bound to the tumor cells, an external source of near-infrared light can be used to safely penetrate normal tissues and kill the tumor cells.

"Demonstrating this specific killing was the objective of this study. We have worked with targeted therapies for many years, and even when this degree of specificity can be demonstrated in a laboratory dish, there are many hurdles to translating these new therapies into clinical studies. We're just beginning to test this in mice, and although there is no guarantee it will work, we are optimistic."

The use of carbon nanotubes to destroy cancer cells with heat is being explored by several research groups, but the new study is the first to show that both the antibody and the carbon nanotubes retained their physical properties and their functional abilities -- binding to and killing only the targeted cells. This was true even when the antibody-nanotube complex was placed in a setting designed to mimic conditions inside the human body.

Biomedical applications of nanoparticles are increasingly attracting the attention of basic and clinical scientists. There are, however, challenges to successfully developing nanomedical reagents. One is the potential that a new nanomaterial may damage healthy cells and organisms. This requires that the effects of nanomedical reagents on cells and organisms be thoroughly studied to determine whether the reagents are inherently toxic.

"There are rational approaches to detecting and minimizing the potential for nonspecific toxicity of the nanoparticles developed in our studies," said Dr. Rockford Draper, leader of the team from UT Dallas and a professor of molecular and cell biology.

Other researchers from UT Southwestern involved in the research were lead authors Pavitra Chakravarty, a graduate student in biomedical engineering, and Dr. Radu Marches, assistant professor in the Cancer Immunobiology Center. Authors from UT Dallas' Alan G. MacDiarmid NanoTech Institute were Dr. Inga Musselman, Dr. Paul Pantano and graduate student Pooja Bajaj. Two undergraduate students in UT Southwestern's Summer Undergraduate Research Fellowship program -- Austin Swafford from UT Dallas and Neil Zimmerman from the Massachusetts Institute of Technology -- also participated.

The research was supported by the Cancer Immunobiology Center at UT Southwestern, the Robert A. Welch Foundation, the Department of Defense and the Center for Applied Biology at UT Dallas.

Dr. Vitetta is a co-inventor on a patent describing the techniques outlined in the study.


Journal reference:

1.                       Chakravarty et al. Thermal ablation of tumor cells with antibody-functionalized single-walled carbon nanotubes. Proceedings of the National Academy of Sciences, Published online on June 16, 2008 DOI: 10.1073/pnas.0803557105

Adapted from materials provided by UT Southwestern Medical Center.

WEB Reference: http://www.sciencedaily.com/releases/2008/06/080616170807.htm

 

Thursday, May 18, 2006

New technique

Recent Headlines Fingerprints provide crucial clue to new nanofiber fabrication technique
Thursday, January 26, 2006
Coutesy: Penn State Live http://live.psu.edu/story/15732

University Park, Pa. -- Fingerprints are usually used to identify people but, this time, they gave Penn State chemical engineers the crucial clue needed to discover an easy, versatile new method for making nanofibers that have potential uses in advanced filtration as well as wound care, drug delivery, bioassays and other medical applications.

The new technique is based on the way forensic scientists develop fingerprints from a crime scene and is easier and more versatile than either of the current methods, templates or electrospinning, used commercially to make nanofibers.

The first nanofibers generated by the technique are made from the basic ingredient of Super Glue‘, cyanoacrylate, which is a biologically-compatible material already used in liquid sutures, spheres for drug delivery and in experimental cancer treatment. However, the researchers say that other materials, like cyanoacrylate, that form solid polymers when nudged by a catalyst could potentially also be used in the process.

Henry C. Foley, professor of chemical engineering who directed the project, says, "The new technique is so versatile that it allows us not only to make nano-scale fibers but also nano-sized flat sheets, spheres and even wrinkled sheets that look tortellini-like."

The researchers can also generate patterned surfaces and say that the process could conceivably be used in an ink jet printer.

The research is detailed in a paper, "Facile Catalytic Growth of Cyanoacrylate Nanofibers," published online today (Jan. 26) in the British journal, The Royal Society of Chemistry, Chemical Communications. The authors are Pratik J. Mankidy, doctoral candidate in chemical engineering; Ramakrishnan Rajagopalan, research associate at Penn State's Materials Research Laboratory, and Foley, who is also associate vice president for research at the University. The journal is available at: http://xlink.rsc.org/?DOI=B514600C

Foley explains that forensic scientists develop latent fingerprints via a process known as cyanoacrylate fuming. Fingerprints left on a surface are exposed to fumes of cyanoacrylate, which form a white polymer residue that makes the ridges of the fingerprint visible.

One of the researchers, Pratik Mankidy, had accidentally left his fingerprints on a piece of research equipment that had been secured with Super Glue‘ and nanofibers appeared. Putting two and two together, the researchers set out to discover what constituents of fingerprints trigger the cyanoacrylate polymerization on the ridges of fingerprints.

They made synthetic fingerprints from a mixture of a known polymer initiator, common table salt in water, and a non-initiator, linoleic acid, found on fingers. Then they exposed the fake prints to cyanoacrylate fuming. Sure enough, they got nanofibers similar to the ones Mankidy’s fingerprints had generated accidentally. They also fumed cyanoacrylate on single initiators and found that sodium hydroxide, potassium hydroxide and potassium acetate produced tortellini-like films of the polymer. When ammonium hydroxide was fumed with cyanoacrylate, it produced nano-sized spheres.

The researchers note that the role played by the presence of the non-initiating components in the fingerprint mixture is not completely understood. They are continuing their experiments to understand the process more completely.

A majority of the fibers produced by the new process have diameters in the 200-250-nanometer range and are hundreds of microns long. Typically, nanofibers that are currently commercially available are in this same range.

Foley notes, “Our findings open up a whole new world of opportunity for control of nanoscale structures through chemistry via catalysis.”

The research was supported by a grant from the National Science Foundation.

***

Photos available at: http://www.psu.edu/ur/2006/fingerprints.html

Tuesday, August 16, 2005

Nanotech to fire up next revolution

Nanotech Poised To Fire Up Medicine's Next Revolution! From Polio to Cancer — Diagnosis and Delivery Tools Are Key - NANO world news

Nano Science and Technology Institute

Monday, August 08, 2005

Nanofiber Research - my experiences

Electrospinning of Nanofibers

In this post I thought of sharing my experiences in the research on polymeric nanofibers. My research was basically centered around creating polymeric nanofibers as protective substrates. In a broader sense it is creating, analyzing and characterizing polymeric nanofibers by a method called electrospinning.

Electrospinning process uses high voltage electric field to produce electrically charged jets from polymer solution or melts, which on drying by means of evaporation of the solvent produces nanofibers.Production of synthetic filaments using electrostatic forces has been known for more than one hundred years. The process of spinning fibers with the help of electrostatic forces is known as electrospinning. It has been shown recently that electrospinning process is capable of producing fibers in the submicron range. Electrospinning has gained much attention in the last decade not only due to its versatility in spinning a wide variety of polymeric fibers but also due to its consistency in producing fibers in submicron range. These fibers with smaller pores and higher surface area than regular fibers have enormous applications in nanocatalysis, tissue scaffolds, protective clothing, filtration and optical electronics.

Electrospinning setup in the Nanofiber research lab at Texas Tech University, Lubbock, TX.

Scanning electron microscope image of polyurethane nanofiber magnified 5900 times.

Application of polymeric nanofibers

Carbon and Graphitic Nanofibers
Tissue Scaffolds and Drug Delivery
Catalytic Nanofibers
Filtration


Reference: Electrospinning of Nanofibers, J Appl Polym Sci 96:557–569, 2005

Renowned electrospinning research groups
Professor Darrell H. Reneker Group
Professor Gregory C. Rutledge group
NUS Nanoscience and Nanotechnology Initiative

Saturday, August 06, 2005

It is a small world

Nanotechnology is the emerging technological field in which structure of matter are produced, characterized and controlled at nano level. Some of the contributing fields to nanotechnology include material science, chemistry, molecular physics, biology, chemical engineering, mechanical engineering and electrical engineering. The evolution of nanotechnology is centered over the basic objective of building precise quality materials with enhanced properties.

How small is small?
The definition most frequently used by government and industry involves structures, devices, and systems having novel properties and functions due to the arrangement of their atoms on the 1 to 100 nanometer scale

Application potential of nanotechnology is foreseen in the following areas.
1.Global energy needs with clean solutions
2.Clean water
3.Healthcare
4.Information technology (powerful and innovative electronic solutions)
5.Defense
6.Material Science

Recent innovations and potential research areas in nanotechnology
1. Molecular nanotechnology - This is essentially developing a technology that could have ability to place every atom in the right place.

Molecular manufacturing will revolutionize physical technology
Current research in nanotechnology is
laying the foundation for a breakthrough development: manufacturing systems based on extremely productive nanoscale devices. These molecular manufacturing systems can be used to build large, complex products cleanly, efficiently, and at low cost. Building with atomic precision, desktop-scale (and larger) molecular manufacturing systems can be used to produce:
·
desktop computers with a billion processors
·
inexpensive, efficient solar energy systems
·
medical devices able to destroy pathogens and repair tissues
·
materials 100 times stronger than steel
·
superior military systems
·
more molecular manufacturing systems

Scientific research related to nanotechnology, however, is not enough — successful development of molecular manufacturing systems will require a focused effort guided by
systems engineering.
Excerpt from
http://e-drexler.com/

2. Creation of functional materials, composites and self healing materials
Carbon nanotubes
Graphite nanofibers
Polymeric nanofibers
Nanoparticles and composites

Center of Nanotechnology, NASA
Carbon nanotube research at IBM
Polymeric nanofiber webs from Donaldson

3.Nanotechnology in Medicine
nanofiberous tissue scaffolds
nanodrug delivery system
nanoprobes
nano medical devices
Introduction to nanotechnology and its applications to medicine

and of course many more in the making, thanks to the National Nanotechnology Initiative

Its indeed a real small world.