About

Log in?

DTU users get better search results including licensed content and discounts on order fees.

Anyone can log in and get personalized features such as favorites, tags and feeds.

Log in as DTU user Log in as non-DTU user No thanks

DTU Findit

Journal article

Energy level alignment and quantum conductance of functionalized metal-molecule junctions: Density functional theory versus GW calculations

From

Center for Atomic-scale Materials Design, Centers, Technical University of Denmark1

Department of Physics, Technical University of Denmark2

University of Copenhagen3

Computational Atomic-scale Materials Design, Department of Physics, Technical University of Denmark4

We study the effect of functional groups (CH3*4, OCH3, CH3, Cl, CN, F*4) on the electronic transport properties of 1,4-benzenediamine molecular junctions using the non-equilibrium Green function method. Exchange and correlation effects are included at various levels of theory, namely density functional theory (DFT), energy level-corrected DFT (DFT+Σ), Hartree-Fock and the many-body GW approximation.

All methods reproduce the expected trends for the energy of the frontier orbitals according to the electron donating or withdrawing character of the substituent group. However, only the GW method predicts the correct ordering of the conductance amongst the molecules. The absolute GW (DFT) conductance is within a factor of two (three) of the experimental values.

Correcting the DFT orbital energies by a simple physically motivated scissors operator, Σ, can bring the DFT conductances close to experiments, but does not improve on the relative ordering. We ascribe this to a too strong pinning of the molecular energy levels to the metal Fermi level by DFT which suppresses the variation in orbital energy with functional group.

Language: English
Publisher: American Institute of Physics
Year: 2013
Pages: 184307
ISSN: 10897690 and 00219606
Types: Journal article
DOI: 10.1063/1.4829520
ORCIDs: Thygesen, Kristian Sommer and 0000-0002-2018-1529

DTU users get better search results including licensed content and discounts on order fees.

Log in as DTU user

Access

Analysis