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Real-Space Quantification of Exciton Localization in Acene Crystals Using Wannier Function Decomposition

Materials Science 2025-10-09 v1 Chemical Physics

Abstract

We introduce the Wannier function decomposition of excitons (WFDX) method to quantify exciton localization in solids within the ab initio Bethe-Salpeter equation framework. By decomposing each Bloch exciton wavefunction into products of single-particle electron and hole maximally localized Wannier functions, this real-space approach provides well-defined orbital- and spatial- resolved measures of both Frenkel and charge-transfer excitons at low computational cost. We apply WFDX to excitons in acene crystals, quantifying how the number of rings, the exciton spin state, and the center-of-mass momntum affect spatial localization. Additionally, we show how this real-space representation reflects structural nonsymmorphic symmetries that are hidden in standard reciprocal-space descriptions. We demonstrate how the WFDX framework can be used to efficiently interpolate exciton expansion coefficients in reciprocal-space and outline how it may facilitate evaluation of observables involving position operators, highlighting its potential as a general tool for both analyzing and computing excitonic properties in solids.

Cite

@article{arxiv.2510.06539,
  title  = {Real-Space Quantification of Exciton Localization in Acene Crystals Using Wannier Function Decomposition},
  author = {Zui Tao and Jonah B. Haber and Jeffrey B. Neaton},
  journal= {arXiv preprint arXiv:2510.06539},
  year   = {2025}
}
R2 v1 2026-07-01T06:22:50.752Z