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research article

Polaron formation and symmetry breaking

Zuppiroli, L.  
•
Bieber, A.
•
Michoud, D.
Show more
2003
Chemical Physics Letters

In a molecular semiconductor, a charged molecule experiences a lattice relaxation which reorganizes it into a cation or an anion-radical. This species is not, in general, a polaron. By using calculations of the geometry and the electronic structure both ab initio and at the semi-empirical levels, we have explored the conditions of polaron formation in a molecular model system: oligophenylene-vinylenes, PVs of increasing sizes. The symmetry breaking occurs at sizes larger than five monomers for the anion and six monomers for the cation. The driving force for this process is primarily the charge-lattice coupling through the stretching mode at 1600 cm-1

  • Details
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Type
research article
DOI
10.1016/S0009-2614(03)00646-8
Web of Science ID

WOS:000183595600002

Author(s)
Zuppiroli, L.  
Bieber, A.
Michoud, D.
Galli, G.
Gygi, F.
Bussac, M. N.  
André, J. J.
Date Issued

2003

Publisher

Elsevier

Published in
Chemical Physics Letters
Volume

374

Issue

1-2

Start page

7

Subjects

ab initio calculations

•

AM1 calculations

•

conducting polymers

•

density functional theory

•

NDO calculations

•

organic semiconductors

•

polarons

•

pseudopotential methods

•

symmetry breaking

•

7825706

•

polaron formation

•

molecular semiconductor

•

charged molecule

•

lattice relaxation

•

electronic structure

•

semiempirical calculations

•

oligophenylene-vinylenes

•

ab initio calculations

•

charge-lattice coupling

•

stretching mode

•

conducting polymers

•

local density approximation

•

pseudopotentials

•

plane wave expansions

•

vibration spectra

•

neglect of diatomic differential overlap

•

AM1

•

Hartree-Fock framework

•

electron density distribution

Note

Copyright 2004, IEE

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LOMM  
Available on Infoscience
April 3, 2007
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/4221
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