Macroscopic quantum electrodynamics and density functional theory approaches to dispersion interactions between fullerenes.

Phys Chem Chem Phys

Institute of Physical Chemistry (IPC), Friedrich Schiller University Jena, Helmholtzweg 4, 07743 Jena, Germany. and Leibniz Institute of Photonic Technology (IPHT), Albert-Einstein-Str. 9, 07745 Jena, Germany and Center for Energy and Environmental Chemistry Jena (CEEC Jena), Friedrich Schiller University Jena, Philosophenweg 7a, 07743 Jena, Germany and Sciclus GmbH & Co. KG, Moritz-von-Rohr-Str. 1a, 07745 Jena, Germany.

Published: October 2020

AI Article Synopsis

  • The arrangement of commercial organic semiconductors, like fullerenes, significantly affects their properties due to intermolecular symmetries, distances, and molecular polarisabilities.
  • This article assesses the van der Waals interactions of fullerene dimers using two methods: Density Functional Theory and Macroscopic Quantum Electrodynamics.
  • The study highlights how model symmetry and distance impact binding energies and spectral changes, suggesting that these findings can advance the field of supramolecular electronics.

Article Abstract

The processing and material properties of commercial organic semiconductors, for e.g. fullerenes is largely controlled by their precise arrangements, specially intermolecular symmetries, distances and orientations, more specifically, molecular polarisabilities. These supramolecular parameters heavily influence their electronic structure, thereby determining molecular photophysics and therefore dictating their usability as n-type semiconductors. In this article we evaluate van der Waals potentials of a fullerene dimer model system using two approaches: (a) Density Functional Theory and, (b) Macroscopic Quantum Electrodynamics, which is particularly suited for describing long-range van der Waals interactions. Essentially, we determine and explain the model symmetry, distance and rotational dependencies on binding energies and spectral changes. The resultant spectral tuning is compared using both methods showing correspondence within the constraints placed by the different model assumptions. We envision that the application of macroscopic methods and structure/property relationships laid forward in this article will find use in fundamental supramolecular electronics.

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Source
http://dx.doi.org/10.1039/d0cp02863kDOI Listing

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