SIMBA

Scaling-up of ICP technology for continuous production of Metallic nanopowders for Battery Applications

 Coordinatore UMICORE 

 Organization address address: RUE DU MARAIS 31
city: BRUXELLES
postcode: 1000

contact info
Titolo: Mr.
Nome: Stijn
Cognome: Put
Email: send email
Telefono: +32 14 24.50.49
Fax: +32 14 24.57.16

 Nazionalità Coordinatore Belgium [BE]
 Sito del progetto http://www.simba-project.eu/
 Totale costo 4˙327˙625 €
 EC contributo 2˙869˙275 €
 Programma FP7-NMP
Specific Programme "Cooperation": Nanosciences, Nanotechnologies, Materials and new Production Technologies
 Code Call FP7-NMP-2008-SMALL-2
 Funding Scheme CP-FP
 Anno di inizio 2009
 Periodo (anno-mese-giorno) 2009-09-01   -   2012-08-31

 Partecipanti

# participant  country  role  EC contrib. [€] 
1    UMICORE

 Organization address address: RUE DU MARAIS 31
city: BRUXELLES
postcode: 1000

contact info
Titolo: Mr.
Nome: Stijn
Cognome: Put
Email: send email
Telefono: +32 14 24.50.49
Fax: +32 14 24.57.16

BE (BRUXELLES) coordinator 853˙401.00
2    EIDGENOESSISCHE MATERIALPRUEFUNGS- UND FORSCHUNGSANSTALT

 Organization address address: Ueberlandstrasse 129
city: DUEBENDORF
postcode: 8600

contact info
Titolo: Dr.
Nome: Patrik
Cognome: Hoffmann
Email: send email
Telefono: +41 33 228 29 45
Fax: +41 33 228 44 90

CH (DUEBENDORF) participant 639˙200.00
3    ALMA MATER STUDIORUM-UNIVERSITA DI BOLOGNA

 Organization address address: Via Zamboni 33
city: BOLOGNA
postcode: 40126

contact info
Titolo: Ms.
Nome: Verdiana
Cognome: Bandini
Email: send email
Telefono: +39 51 20 997 64
Fax: +39 51 20 9 8115

IT (BOLOGNA) participant 505˙789.00
4    FRAUNHOFER-GESELLSCHAFT ZUR FOERDERUNG DER ANGEWANDTEN FORSCHUNG E.V

 Organization address address: Hansastrasse 27C
city: MUENCHEN
postcode: 80686

contact info
Titolo: Mr.
Nome: Walter
Cognome: Krause
Email: send email
Telefono: +49 89 1205 27 13
Fax: +49 89 1205 75 34

DE (MUENCHEN) participant 444˙325.00
5    DACS DVORAK ADVANCED COATING SOLUTIONS

 Organization address address: FEUERWERKERSTRASSE 39
city: THUN
postcode: 3602

contact info
Titolo: Dr.
Nome: Michael
Cognome: Dvorak
Email: send email
Telefono: +41 33 228 37 50
Fax: +41 33 228 38 50

CH (THUN) participant 252˙330.00
6    SAFT SA

 Organization address address: Rue Sadi Carnot 12
city: BAGNOLET
postcode: 93170

contact info
Titolo: Ms.
Nome: Nathalie
Cognome: Frene
Email: send email
Telefono: -662
Fax: -636

FR (BAGNOLET) participant 174˙230.00

Mappa


 Word cloud

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

scientists    capacity    particle    online    size    material    graphite    powder    environment    monitoring    battery    ion    continuous    nano    techniques    nanoparticles    li    si    market    line    reactor    optimising    simba    lab    batteries    nanopowders    uniform    safety    industrial    yields    rate    silicon    anode    yield    materials    safe    generation    quantities    structured    quality    plasma    icp    optical   

 Obiettivo del progetto (Objective)

'Although the development of nanoparticles-based materials has advanced rapidly in recent years, industrial production techniques have not kept pace. At this point there is a substantial need for safe production facilities, enabling the synthesis of large amounts of metallic nanoparticles with controlled and uniform quality (particle size, particle size distribution, chemical composition, etc.). This project will respond to this need by developing an industrial production line including on-line monitoring systems, assuring at the same time safety for the operating personnel as well as for the surrounding environment. The nano-structured materials of interest for this project are silicon and silicon-based alloyed nanoparticles, which have a huge potential as anode material in battery applications. With the aim to realise long life, high capacity Li-ion batteries, a new anode material with a volumetric capacity three times higher than the standard graphite anode has to be developed. The potential to replace 50% of turnover of the battery graphite market will generate a business of min 200 Mio € per year. The overall objective of this project is to transfer the ICP processing knowledge and technology investigated at a lab-scale to an industrial scale apparatus for the continuous production of tailored oxygen-free Si-based nanopowders at a production rate between 1and 10 kg/hour.'

Introduzione (Teaser)

EU-funded scientists are developing continuous processing technology to produce high yields of uniform silicon nanoparticles. The technology should spur the commercial availability of exciting new products currently in the lab.

Descrizione progetto (Article)

The development of nano-structured materials with unique properties has opened the door to virtually limitless potential applications, yet missing industrial processing techniques are impeding market penetration. Scientists initiated the EU-funded project SIMBA to tackle this challenge. Their focus is on developing an industrial-scale inductively coupled plasma (ICP) production setup.

Adaptation of conventional ICP batch processing for continuous mode operation will enable higher throughput for larger yields. Online monitoring systems will ensure the safe production of well controlled and high-quality nanoparticles. The system will be used to deliver large quantities of high-quality silicon (Si) and Si-based nanoparticles for the production of novel anode materials in lithium-ion (Li-ion) batteries.

Two partners operate plasma processing setups, one at lab scale and one at industrial scale. SIMBA is working to increase yield significantly by optimising processing conditions and reactor design. A combination of empirical measurements and modelling led to the definition of a processing protocol, while production of nanoparticles enabled the assessment of processing parameter effects on particle size. The odels are also supporting the design of new reactor geometries for optimal evaporation efficiency and minimal adhesion of the nanopowders to reaction chamber walls.

An important part of SIMBA's efforts is focused on health, safety and the environment (HSE). Emissions of nano- and micro-sized Si into the workspace were low and generally linked to accidents. SIMBA enhanced system safety with development of innovative high-pressure relief valves for the dust-loaded gaseous atmosphere of the closed powder containers.

Online monitoring and control is essential. Scientists are now developing a new optical sensor to monitor the precursor powder feed rate as well as testing an optical system to measure particle size directly during particle generation. The latter should be equally applicable to wet-dispersed and gas-borne nanoparticle generation, thus increasing marketability.

Scientists are currently optimising the upscaled process to increase Si powder yield while minimising wall losses. The next period is expected to demonstrate major breakthroughs in industrial powder injection with novel online monitoring and functionalisation for the safe production of large quantities of high-quality Si and Si-based nanoparticles.

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