Skip to Main Content (Press Enter)

Logo CNR
  • ×
  • Home
  • People
  • Outputs
  • Organizations
  • Expertise & Skills

UNI-FIND
Logo CNR

|

UNI-FIND

cnr.it
  • ×
  • Home
  • People
  • Outputs
  • Organizations
  • Expertise & Skills
  1. Outputs

Ab initio complex band structure of conjugated polymers: Effects of hydrid density functional theory and GW schemes

Academic Article
Publication Date:
2012
abstract:
The nonresonant tunneling regime for charge transfer across nanojunctions is critically dependent on the so-called ? parameter, governing the exponential decay of the current as the length of the junction increases. For periodic materials, this parameter can be theoretically evaluated by computing the complex band structure (CBS)--or evanescent states--of the material forming the tunneling junction. In this work we present the calculation of the CBS for organic polymers using a variety of computational schemes, including standard local, semilocal, and hybrid-exchange density functionals, and many-body perturbation theory within the GW approximation. We compare the description of localization and ? parameters among the adopted methods and with experimental data. We show that local and semilocal density functionals systematically underestimate the ? parameter, while hybrid-exchange schemes partially correct for this discrepancy, resulting in a much better agreement with GW calculations and experiments. Self-consistency effects and self-energy representation issues of the GW corrections are discussed together with the use of Wannier functions to interpolate the electronic band structure.
Iris type:
01.01 Articolo in rivista
Keywords:
SELF-ASSEMBLED MONOLAYERS; ELECTRON-TRANSFER; WANNIER FUNCTIONS; DISTANCE DEPENDENCE; MOLECULAR JUNCTIONS; GREENS-FUNCTION; TRANSPORT; POLYACETYLENE; LONG; CONDUCTANCE
List of contributors:
Ruini, Alice; Ferretti, Andrea; Bussi, Giovanni; MARTIN SAMOS COLOMER, Layla
Authors of the University:
FERRETTI ANDREA
MARTIN SAMOS COLOMER LAYLA
Handle:
https://iris.cnr.it/handle/20.500.14243/242055
Published in:
PHYSICAL REVIEW. B, CONDENSED MATTER AND MATERIALS PHYSICS
Journal
  • Use of cookies

Powered by VIVO | Designed by Cineca | 26.5.0.0 | Sorgente dati: PREPROD (Ribaltamento disabilitato)