@article{ab24b6376f604675bd6fd5882dc541e3,
title = "Electron affinity and binding energy of excitons in disordered organic semiconductors. III. Multimethod study for films of the blue fluorescent emitter MADN",
abstract = "A method is developed for deducing the electron affinity of disordered organic semiconductors from spectroscopic thin-film studies of the ionization energy and the optical gap energy, combined with field-induced dissociation (FID) device experiments that are analyzed with kinetic Monte Carlo simulations using a methodology that has been presented by de Jong et al., Phys. Rev. B 112, 224202 (2025). The FID experiments are carried out for a set of eight organic semiconductor materials that are often used in organic light-emitting diodes. The analysis is focused on the 𝛼 and 𝛽 isomers of the blue fluorescent emitter material 2-methyl-9,10-di-naphthyl-anthracene. For these two materials, the experimental ionization energy, the optical gap energy, the exciton binding energy, and the electron affinity are shown to be consistent with the results of quantum-chemical calculations, presented by G. Tirimb{\`o} et al., Phys. Rev. B 112, 224203 (2025). For all fluorescent emitter materials studied, the FID experiments reveal an exciton binding energy of approximately 1.0–1.2 eV, whereas for a thermally activated delayed fluorescence material, a slightly smaller value is obtained.",
keywords = "Organic light emitting diode, Field-induced dissociation, exciton dynamics, exciton binding energy, Frontier molecular orbital energies",
author = "\{de Jong\}, \{E. J.\} and \{de Rooij\}, \{N. G.\} and \{van Geel\}, \{W. F. M.\} and C. Hauenstein and H. Tomita and G. Tirimb{\`o} and M. Berghuis and S. Gottardi and B. Baumeier and R. Coehoorn",
year = "2025",
month = dec,
day = "4",
doi = "10.1103/kcl9-54vq",
language = "English",
volume = "112",
journal = "Physical Review B",
issn = "2469-9950",
publisher = "American Physical Society",
number = "22",
}