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What kind of innovative devices will future NANOELECTRONICS create in the year 2020 ?

Started Sep 10, 2012 0 Replies

A chance to have your say about future nanoelectronics development, please give your opinion at the link below..…Continue


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Nanotechnology , nanoelectronics , nanofabrication , graphene , lithography , cleanroom
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Making nanoscience popular
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University of Cambridge
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Posted on September 11, 2012 at 4:55pm 0 Comments

Attention all NANO-ELECTRONICS researchers and enthusiasts !! What kind of innovative digital products will future nano-electronics enable in the year 2020 ?

A chance to have your say about future nanoelectronics development, please give your opinion at the link below..

Thanks to all


Comment Wall (4 comments)

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At 7:01pm on January 18, 2011,
Full member
afsheen esfahani
cannt find it?...whats the name?
At 5:25pm on January 18, 2011,
Full member
Rakesh Kumar
Hey man thanks being after me for the research paper. I just completed one research paper accepted for publication in International Journal. It is on DNA Electronics. I have been going through the literature of Graphene transistor..I thing it this point we can go for research article on Graphene transistor only. ...for example I-V characteristics of Graphene transistor..what u say Longest man.
At 8:58am on January 14, 2011,
Full member
Rakesh Kumar
Longest man...I never intended to hide myself from friends like you....However good day to u too.
At 8:18pm on January 13, 2011,
Full member

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Publications by A. Paszternák:

Smartphone-Based Extension of the Curcumin/Cellophane pH Sensing Method

Pd/Ni Synergestic Activity for Hydrogen Oxidation Reaction in Alkaline Conditions

The potential use of cellophane test strips for the quick determination of food colours

pH and CO2 Sensing by Curcumin-Coloured Cellophane Test Strip

Polymeric Honeycombs Decorated by Nickel Nanoparticles

Directed Deposition of Nickel Nanoparticles Using Self-Assembled Organic Template,

Organometallic deposition of ultrasmooth nanoscale Ni film,

Zigzag-shaped nickel nanowires via organometallic template-free route

Surface analytical characterization of passive iron surface modified by alkyl-phosphonic acid layers

Atomic Force Microscopy Studies of Alkyl-Phosphonate SAMs on Mica

Amorphous iron formation due to low energy heavy ion implantation in evaporated 57Fe thin films

Surface modification of passive iron by alkylphosphonic acid layers

Formation and structure of alkylphosphonic acid layers on passive iron

Structure of the nonionic surfactant triethoxy monooctylether C8E3 adsorbed at the free water surface, as seen from surface tension measurements and Monte Carlo simulations

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