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February 21, 2026ACS Nano0 citations

Tunable Electronic Energy Level Alignment and Exciton Diversity in Organic–Inorganic van der Waals Heterostructures

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ACAurélie ChampagneOAOlugbenga AdeniranJHJonah B. Haber

Key Points

  • This research explores the tunability of energy levels and exciton behavior in hybrid bilayers of 2D materials.
  • Investigated hybrid bilayers of perylene-based molecular crystals and monolayer transition metal dichalcogenides.
  • Utilized ab initio many-body perturbation theory and the Bethe–Salpeter equation for analysis.
  • Varied TMD monolayers to study effects on energy levels and exciton diversity.
  • Found substantial renormalization of molecular crystal band gap due to TMD interactions.
  • Demonstrated tunability of energy level alignment and exciton types, including hybrid and charge-transfer excitons.
  • Established potential for these heterostructures in advanced optoelectronic applications.

Abstract

van der Waals stacking of two-dimensional (2D) materials offers a powerful platform for engineering material interfaces with tailored electronic and optical properties. While most van der Waals multilayers have featured inorganic monolayers, incorporating molecular monolayers introduces additional degrees of tunability and functionality. Here, we investigate hybrid bilayers composed of atomically thin perylene-based molecular crystals interfaced with monolayer transition metal dichalcogenides (TMDs), specifically MoS 2 and WS 2 . Using the ab initio many-body perturbation theory within the GW approximation and the Bethe–Salpeter equation approach, we predict emergent properties beyond those of the isolated constituent systems. Notably, we find substantial renormalization of monolayer molecular crystal band gap due to TMD-induced polarization. Furthermore, by varying the TMD monolayer, we demonstrate tuning of the energy level alignment of the bilayer and subsequent control over a diversity of lowest-energy excitons, which include strongly bound hybrid excitons and long-lived charge-transfer excitons. These findings establish organic–inorganic van der Waals heterostructures as a promising class of materials for tunable optoelectronic devices and quantum excitonic phenomena, expanding the design space for low-dimensional systems.

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Cite This Study

Champagne et al. (2026) studied this question.

synapsesocial.com/papers/69990de85b97ab4c14ac27cchttps://doi.org/10.1021/acsnano.5c11656
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