MICROCHEMICALIMAGING

Enhancing microfabricated devices with chemical imaging for novel chemical technology

 Coordinatore IMPERIAL COLLEGE OF SCIENCE, TECHNOLOGY AND MEDICINE 

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 Nazionalità Coordinatore United Kingdom [UK]
 Totale costo 1˙430˙607 €
 EC contributo 1˙430˙607 €
 Programma FP7-IDEAS-ERC
Specific programme: "Ideas" implementing the Seventh Framework Programme of the European Community for research, technological development and demonstration activities (2007 to 2013)
 Code Call ERC-2008-AdG
 Funding Scheme ERC-AG
 Anno di inizio 2009
 Periodo (anno-mese-giorno) 2009-01-01   -   2014-10-31

 Partecipanti

# participant  country  role  EC contrib. [€] 
1    IMPERIAL COLLEGE OF SCIENCE, TECHNOLOGY AND MEDICINE

 Organization address address: SOUTH KENSINGTON CAMPUS EXHIBITION ROAD
city: LONDON
postcode: SW7 2AZ

contact info
Titolo: Mr.
Nome: Shaun
Cognome: Power
Email: send email
Telefono: +44 207 594 8773
Fax: +44 207 594 8609

UK (LONDON) hostInstitution 1˙430˙607.00
2    IMPERIAL COLLEGE OF SCIENCE, TECHNOLOGY AND MEDICINE

 Organization address address: SOUTH KENSINGTON CAMPUS EXHIBITION ROAD
city: LONDON
postcode: SW7 2AZ

contact info
Titolo: Prof.
Nome: Sergei
Cognome: Kazarian
Email: send email
Telefono: 44 207 594 5574

UK (LONDON) hostInstitution 1˙430˙607.00

Mappa


 Word cloud

Esplora la "nuvola delle parole (Word Cloud) per avere un'idea di massima del progetto.

engineering    lengthscales    material    integration    chemical    imaging    industrial    advantages    capability    miniaturised    microchemical    materials   

 Obiettivo del progetto (Objective)

'The development of microchemical systems is one of the most exciting recently developed research topics with numerous potential industrial applications. One of the greatest challenges to encourage these systems to be adopted by industry is successful high level integration with sensors for understanding, optimisation and control of microsystems for various processes. The proposed research will develop such systems and their integration via linking them with chemical imaging. The benefits of chemical engineering at smaller lengthscales are manifold; the design of microchemical processes is important where, by nature, it is essential to have microdevices, e.g. in cell biology manipulation and transformations. Other processes can be designed macroscopically, but a move to microprocesses gives process advantages, such as enhanced heat and mass transfer, novel flow regimes, bringing material and process time and lengthscales into the same region to allow material property and process interactions, which would be impossible in macro-reactors. In order to achieve this, it is essential to have the capability of rapid 3D chemical imaging on a nano/microscale, as only by devising these new techniques to image microchemical systems, it will be possible to optimise them for novel engineering. The proposal is aimed at providing chemical imaging capability to miniaturised devices for the engineering of new materials and processes. It is proposed (i) to use chemical imaging and micro-deposition methods for the generation of materials with responsive gradient structures; (ii) to engineer nanostructured materials aided by high-resolution chemical imaging; (iii) to combine microfluidics with chemical imaging as a prototype of miniaturised chemical factories. The overall aim is to utilise the advantages of spectroscopic chemical imaging to develop novel miniaturised devices and materials that will serve as suitable platforms for future industrial users with wide applicability.'

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