BEST

Bridging length and timescales of Electronic processes in organic SemiconducTor devices

 Coordinatore UNIVERSITE DE MONS 

 Organization address address: PLACE DU PARC 20
city: MONS
postcode: 7000

contact info
Titolo: Dr.
Nome: David
Cognome: Beljonne
Email: send email
Telefono: +32 65373872
Fax: +32 65373861

 Nazionalità Coordinatore Belgium [BE]
 Totale costo 169˙800 €
 EC contributo 169˙800 €
 Programma FP7-PEOPLE
Specific programme "People" implementing the Seventh Framework Programme of the European Community for research, technological development and demonstration activities (2007 to 2013)
 Code Call FP7-PEOPLE-2013-IEF
 Funding Scheme MC-IEF
 Anno di inizio 2015
 Periodo (anno-mese-giorno) 2015-01-01   -   2016-12-31

 Partecipanti

# participant  country  role  EC contrib. [€] 
1    UNIVERSITE DE MONS

 Organization address address: PLACE DU PARC 20
city: MONS
postcode: 7000

contact info
Titolo: Dr.
Nome: David
Cognome: Beljonne
Email: send email
Telefono: +32 65373872
Fax: +32 65373861

BE (MONS) coordinator 169˙800.00

Mappa


 Word cloud

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

energy    supramolecular    transfer    generation    electronic    platform    efficient    theoretical    industry    excitations    charge    organic    materials    exciton   

 Obiettivo del progetto (Objective)

'The development of the next generation of efficient opto-electronic devices based on organic semiconductors relies on the capability of theoretical modelling to shed light onto microscopic mechanisms underneath and provide a rational approach to materials and devices design. To answer this need, we propose the realization of a general multiscale modelling platform, capable to cover and bridge key aspects at core of device functioning, from supramolecular organization to energetics and time evolution of charge and energy carriers. This novel modelling platform will be applied to obtain crucial insights on exciton dissociation and charge separation in bulk heterojunctions, charge transport in doped materials and multiple exciton generation through fission of singlet excitons. A general and efficient computational protocol for the collection of essential information with state-of-the-art and original theoretical tools at the different levels of resolution, and its injection into effective model Hamiltonians, will endow us with an unprecedented comprehensive and realistic picture of electronic structure and dynamics in heterogeneous and disordered mesoscopic systems. Fully accounting for charge and energy carrier delocalization, intermolecular hybridization and quantum superposition of Frenkel and charge-transfer excitations, this approach has the potential to disclose molecular and supramolecular requirements for an efficient ultra-fast multiplication of excitations and their subsequent splitting through hot charge-transfer states, or for the tuning of semiconductor properties by chemical doping. This research will be undertaken in collaboration with leading experimental and theoretical groups, levering the BEST ambitious profile, and strengthening the European excellence in organic electronics research. The involvement in Host-industry partnerships will extend the BEST outreach towards applications, reinforcing the leadership of European high-tech industry.'

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