English

Stochastically Realized Observables for Excitonic Molecular Aggregates

Chemical Physics 2021-01-27 v1 Computational Physics

Abstract

We show that a stochastic approach enables calculations of the optical properties of large 2-dimensional and nanotubular excitonic molecular aggregates. Previous studies of such systems relied on numerically diagonalizing the dense and disordered Frenkel Hamiltonian, which scales approximately as O(N3)\mathcal{O}(N^3) for NN dye molecules. Our approach scales much more efficiently as O(Nlog(N))\mathcal{O}(N\log(N)), enabling quick study of systems with a million of coupled molecules on the micron size scale. We calculate several important experimental observable including the optical absorption spectrum and density of states, and develop a stochastic formalism for the participation ratio. Quantitative agreement with traditional matrix diagonalization methods is demonstrated for both small- and intermediate-size systems. The stochastic methodology enables the study of the effects of spatial-correlation in site energies on the optical signatures of large 2D aggregates. Our results demonstrate that stochastic methods present a path forward for screening structural parameters and validating experiments and theoretical predictions in large excitonic aggregates.

Keywords

Cite

@article{arxiv.2008.13228,
  title  = {Stochastically Realized Observables for Excitonic Molecular Aggregates},
  author = {Nadine C Bradbury and Chern Chuang and Arundhati P Deshmukh and Eran Rabani and Roi Baer and Justin R Caram and Daniel Neuhauser},
  journal= {arXiv preprint arXiv:2008.13228},
  year   = {2021}
}

Comments

11 pages, 7 figures, as submitted to JPC

R2 v1 2026-06-23T18:11:35.957Z