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Efficient Calculation of Electrostatic Energies for Large-Scale Nonadiabatic Molecular Dynamics in a Site Basis.

Journal articles  - Journal Article
Giannini, S; Stojanovic, L; Ellis, M; von Rudorff, GF; Blumberger, J
Published in: J Chem Theory Comput
January 13, 2026

Nonadiabatic molecular dynamics simulation of charge and exciton transport in molecular materials and biological systems are often carried out in a (quasi-)diabatic or site basis. Such simulations require the calculation of the electrostatic site energy of all possible charge or excited states of the system at each molecular dynamics step, which quickly becomes computationally prohibitive when Ewald summation is used. By combining the damped shifted force real space electrostatic summation method with a suitable addition-subtraction scheme, we show that the calculation of electrostatic energy and forces for Nmol site energies can be carried out at a small and system size independent overhead compared to the calculation for a single site energy. This advance enables us to include full electrostatic interactions in nonadiabatic molecular dynamics simulations for charge and exciton transport. Applying our computational scheme to hole transport in crystalline anthracene, we find that upon inclusion of electrostatic site energy fluctuations (also sometimes termed diagonal electrostatic disorder) the inverse participation ratio measuring hole delocalization decreases from ∼5 to ∼4 concomitant with a decrease in the hole mobility by about 9% along the b-crystallographic direction and by 30% along the a-direction. Accounting for electrostatics improves the agreement with experimental time-of-flight mobilities and mobility anisotropy, but it does not alter the charge transport mechanism, transient delocalization. Our work confirms that omission of electrostatic site energy disorder is a reasonable approximation for acenes, yet electrostatics is required to obtain near-quantitative agreement with experiment, even for apolar systems.

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Published In

J Chem Theory Comput

DOI

EISSN

1549-9626

Publication Date

January 13, 2026

Volume

22

Issue

1

Start / End Page

151 / 165

Location

United States

Related Subject Headings

  • Chemical Physics
  • 3407 Theoretical and computational chemistry
  • 3406 Physical chemistry
 

Citation

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Giannini, S., Stojanovic, L., Ellis, M., von Rudorff, G. F., & Blumberger, J. (2026). Efficient Calculation of Electrostatic Energies for Large-Scale Nonadiabatic Molecular Dynamics in a Site Basis. J Chem Theory Comput, 22(1), 151–165. https://doi.org/10.1021/acs.jctc.5c01753
Giannini, Samuele, Ljiljana Stojanovic, Matthew Ellis, Guido Falk von Rudorff, and Jochen Blumberger. “Efficient Calculation of Electrostatic Energies for Large-Scale Nonadiabatic Molecular Dynamics in a Site Basis.J Chem Theory Comput 22, no. 1 (January 13, 2026): 151–65. https://doi.org/10.1021/acs.jctc.5c01753.
Giannini S, Stojanovic L, Ellis M, von Rudorff GF, Blumberger J. Efficient Calculation of Electrostatic Energies for Large-Scale Nonadiabatic Molecular Dynamics in a Site Basis. J Chem Theory Comput. 2026 Jan 13;22(1):151–65.
Giannini, Samuele, et al. “Efficient Calculation of Electrostatic Energies for Large-Scale Nonadiabatic Molecular Dynamics in a Site Basis.J Chem Theory Comput, vol. 22, no. 1, Jan. 2026, pp. 151–65. Pubmed, doi:10.1021/acs.jctc.5c01753.
Giannini S, Stojanovic L, Ellis M, von Rudorff GF, Blumberger J. Efficient Calculation of Electrostatic Energies for Large-Scale Nonadiabatic Molecular Dynamics in a Site Basis. J Chem Theory Comput. 2026 Jan 13;22(1):151–165.
Journal cover image

Published In

J Chem Theory Comput

DOI

EISSN

1549-9626

Publication Date

January 13, 2026

Volume

22

Issue

1

Start / End Page

151 / 165

Location

United States

Related Subject Headings

  • Chemical Physics
  • 3407 Theoretical and computational chemistry
  • 3406 Physical chemistry