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Catalysis is one of the longest-established uses for nano particles. Aluminium, iron, titanium dioxide, clays, and silica have all been used as catalysts in nanoparticle form for many years.
 
Nanocatalysis is a rapidly growing field which involves the use of nano materials as catalysts for a variety of homogeneous and heterogeneous catalysis applications. Heterogeneous catalysis represents one of the oldest commercial practices of nanoscience; nanoparticles of metals, semiconductors, oxides, and other compounds have been widely used for important chemical reactions.

Although surface science studies have contributed significantly to our fundamental understanding of catalysis, most commercial catalysts, are still produced by "mixing, shaking and baking" mixtures of multi-components; their nanoscale structures are not well controlled and the synthesis-structure-performance relationships are poorly understood. Due to their complex physico-chemical properties at the nanometer scale, even characterization of the various active sites of most commercial catalysts proves to be elusive.

Application 

Green diesel production using Fischer-Tropsch Synthesis (FTS)
 Process Improvements: 
  • Improving the FTS technology for production of high molecular weight waxes, followed by their hydrocracking to generate liquid fuels 
  • Improved efficiency of slurry and fixed-bed reactors, used in FTS from biosyngas 
  • Produce long, linear-chain paraffin waxes in fixed bed & slurry FTS reactors
    Catalyst.
  • Nano Fe and Co powders (10-50 nm) are used as FTS catalysts in slurry reactors, promoted by other metals like Mn, Cu & alkalis 
  • Produced by thermal plasma chemical vapor deposition (TPCVD) and cluster spray techniques 
  • Minimize liquid-solid diffusion resistance 
  • Multi-walled carbon nanofilaments (MWCNF), produced by CO2 sequestration via dry reforming for gas-to-liquid FTS, with the iron carbide content rendering catalytic activity.

The distribution behaviour of solder paste is improved and optimized by the use of a nano-deposition in addition to an electro-polish.Without delay after the laser manufacture you can let your stencil undergo a deposition.

In contrast to the competition this can be done at a sensational price-benefit ratio!

Solder residues stick less firmly to or not at all to the pads due to this additional deposition. Consequently, the stencils are even simpler and quicker to clean. This has been confirmed by a number of users, after extensive tests with coated stencils in the production line.

A nano-deposition can be deposited on stainless steel as well as nickel stencils. Usually is a one coating sufficient for several tens of thousands of printing processes. A repeat treatment is at all times possible.

Nano-biosystems is a field that includes both the use of nanotechnology in biological systems and utilization of biological or bio-mimetic techniques in nanotechnology. Nano-biotechnology shows a tremendous promise of improving the quality of life. For example, nano-vehicles might deliver drugs directly to targeted cells, nano-membranes may be used for development of cheap, effective water purification systems, or nano-chips that interface neurons with electronics may become common place. Additionally, Nano-Electro Mechanical Systems (NEMS) might use sensors and physical controls to stabilize individuals with heart, kidney or liver disease.

Impact of Nanotechnology on medicine

The impact of nanotechnology on cancer and other diseases depends on the design and
construction of devices to diagnose, treat, and monitor disease at all stages. In addition, new tools and devices are needed to understand the processes behind the development and
spread of a disease and to reverse or alter the progress of the disease.

Through a more comprehensive understanding of the bio-nano interface, nanomedicine will
mature into a higher-throughput and more predictable endeavor. This new branch of
medicine will revolutionize the way medicine is practiced, create a new pipeline of diagnostic
and therapeutic capabilities for the pharmaceutical industry, and catalyze extraordinary
advances in molecular and cell biology.

The most promising future nano science-based applications in medicine are
ultra sensitive and selective multiplexed diagnostics, drug delivery, targeted treatment of
cancer and other diseases, body imaging, tissue/organ regeneration, and gene therapy. All of
these applications combine engineering advances with improved strategies for manipulating
biological systems. New approaches for drug delivery, imaging, and diagnostics will be
refined and developed, and more sophisticated nano-therapeutics and diagnostics will
supplement those already in clinical use or in clinical trials. To facilitate this development, it
will be necessary to implement new manufacturing approaches. All new products must
address stringent safety and compatibility standards that are being challenged by the novel
properties of engineered nanomaterials and the potential that these may introduce new
biohazards.

Nanobiosystems design and applications

1. Functional nanomaterials
2. Inorganic/biologic hybrid composites and nanoparticles
3. Development of new technologies and tools for the detection, identification, quantification, and monitoring of molecules, cells and tissues of clinical and biomedical relevance.

Future Vision
 
  • Develop point-of-care nanodevices for early diagnosis and therapeutic response monitoring capable of using unprocessed bodily fluids with multiplexing and rapid analysis capabilities.
  • Develop diagnostic and post-therapy monitoring nanodevices for the detection and interrogation of circulating tumor cells and circulating tumor initiating cells.
  • Conduct successful clinical trials for nanoparticle delivery of siRNA molecules and other nucleic acid therapeutics.
  • Demonstrate novel nanoparticle-based drug formulations with significant improvement in targeting therapeutic windows as compared to free drug delivery.
  • Design particles to enable penetration of the blood-brain-barrier and enable more effective treatment of brain tumors.
  • Leverage nanotechnology-based studies of cell migration and cell motility for the development of anti-metastatic drugs.


Research Focus

Activities include the development of new technologies and tools for the detection, identification, quantification, and monitoring of molecules, cells and tissues of clinical and biomedical relevance. Research focuses in:
  • Micro-Nano systems for diagnosis.
  • On-chip environmental health monitoring.
  • Nano-Bio-Electronic Interfaces.
  • NanoBioFuel cells.
  • Nanobioelectrochemistry.

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