Published July 8, 2016 | Version v1
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Combining the Many-Body GW Formalism with Classical Polarizable Models: Insights on the Electronic Structure of Molecular Solids

  • 1. Grenoble Alpes University, CNRS, Institut NÉEL, F-38042 Grenoble, France
  • 2. Laboratory for Chemistry of Novel Materials, University of Mons, Place du Parc 20, BE-7000 Mons, Hainaut, Belgium
  • 3. INAC, SP2M/L_Sim, CEA/UJF, Cedex 09, 38054 Grenoble, France

Description

We present an original hybrid QM/MM scheme merging the many-body Green’s function GW formalism with classical discrete polarizable models and its application to the paradigmatic case of a pentacene crystal. Our calculated transport gap is found to be in excellent agreement with reference periodic bulk GW calculations, together with properly parametrized classical microelectrostatic calculations, and with photoionization measurements at crystal surfaces. More importantly, we prove that the gap is insensitive to the partitioning of pentacene molecules in QM and MM subsystems, as a result of the mutual compensation of quantum and classical polarizabilities, clarifying the relation between polarization energy and delocalization. The proposed hybrid method offers a computationally attractive strategy to compute the full spectrum of charged excitations in complex molecular environments, accounting for both QM and MM contributions to the polarization energy, a crucial requirement in the limit of large QM subsystems.

Notes

The authors are indebted to Jeró ̂me Cornil for pointing out the reference to Alexander Mityashin's thesis and for a critical reading of the manuscript and thank Valerio Olevano for numerous discussions concerning the GW formalism applied to organic crystals. G.D. gratefully thanks Zoltan G. Soos for discussions on polarizable models and photoelectron spectroscopy and acknowledges support from EU through the FP7-PEOPLE-2013-IEF program (GA 2013-625198). D.B. is FNRS research director. This research used resources from the GENCI French national supercomputing resources.

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Funding

European Commission
EXTMOS - EXTended Model of Organic Semiconductors 646176
European Commission
EoCoE - Energy oriented Centre of Excellence for computer applications 676629