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Analyzing Electronic Excitations and Exciton Binding Energies in Y6 Films

Title data

Javaid Akram, Sahar ; Meißner, Sophie ; Kümmel, Stephan:
Analyzing Electronic Excitations and Exciton Binding Energies in Y6 Films.
In: Advanced Functional Materials. (2025) . - 2419236.
ISSN 1616-3028
DOI: https://doi.org/10.1002/adfm.202419236

Official URL: Volltext

Project information

Project title:
Project's official title
Project's id
Solar Technologies go Hybrid (SolTech)
No information
Linux-Cluster zum wissenschaftlichen Hochleistungsrechnen
422127126
SFB 1585: Strukturierte Funktionsmaterialien für multiplen Transport in nanoskaligen räumlichen Einschränkungen
492723217
Open Access Publizieren
No information

Project financing: Bayerisches Staatsministerium für Wissenschaft, Forschung und Kunst
Deutsche Forschungsgemeinschaft

Abstract in another language

The Y6 molecule is one of the most promising non-fullerene acceptors. Based on first-principles calculations, this paper analyzes how the separation of an electronic excitation into electron and hole densities is influenced by the interaction between different Y6 molecules. By calculating the optical and the fundamental gaps of ensembles of Y6 molecules that realistically represent a film, their corresponding exciton binding energies are obtained. The combination of range separation, optimal tuning, and dielectric screening endows the presented density functional theory calculations with predictive power. The calculations reveal that the electronic excitations, characterized as electron–hole pairs via their natural transition orbitals, spread across multiple Y6 molecules. A distinct decrease in the exciton binding energy is correlated to a notable charge separation, and the exciton binding energy saturates in ensembles of six to seven Y6 molecules at ≈0.25 electronvolt (eV). These findings contribute to explaining the efficient charge separation in films of Y6. They also give a guideline for the number of molecules that theoretical models should take into account when they aim at a realistic description of charge separation.

Further data

Item Type: Article in a journal
Refereed: Yes
Institutions of the University: Faculties
Faculties > Faculty of Mathematics, Physics und Computer Science
Faculties > Faculty of Mathematics, Physics und Computer Science > Department of Physics
Faculties > Faculty of Mathematics, Physics und Computer Science > Department of Physics > Chair Theoretical Physics IV - Electronic Structure and Dynamics
Faculties > Faculty of Mathematics, Physics und Computer Science > Department of Physics > Chair Theoretical Physics IV - Electronic Structure and Dynamics > Chair Theoretical Physics IV - Electronic Structure and Dynamics - Univ.-Prof. Dr. Stephan Kümmel
Research Institutions > Collaborative Research Centers, Research Unit > SFB 1585 - MultiTrans – Structured functional materials for multiple transport in nanoscale confinements
Research Institutions
Research Institutions > Collaborative Research Centers, Research Unit
Result of work at the UBT: Yes
DDC Subjects: 500 Science > 530 Physics
Date Deposited: 26 Feb 2025 08:32
Last Modified: 09 Mar 2026 13:44
URI: https://eref.uni-bayreuth.de/id/eprint/92546