Directed exciton transport highways in organic semiconductors

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Date
2023
Volume
14
Issue
Journal
Nature Communications
Series Titel
Book Title
Publisher
[London] : Nature Publishing Group UK
Abstract

Exciton bandwidths and exciton transport are difficult to control by material design. We showcase the intriguing excitonic properties in an organic semiconductor material with specifically tailored functional groups, in which extremely broad exciton bands in the near-infrared-visible part of the electromagnetic spectrum are observed by electron energy loss spectroscopy and theoretically explained by a close contact between tightly packing molecules and by their strong interactions. This is induced by the donor–acceptor type molecular structure and its resulting crystal packing, which induces a remarkable anisotropy that should lead to a strongly directed transport of excitons. The observations and detailed understanding of the results yield blueprints for the design of molecular structures in which similar molecular features might be used to further explore the tunability of excitonic bands and pave a way for organic materials with strongly enhanced transport and built-in control of the propagation direction.

Description
Keywords
anisotropy, crystal structure, electron, molecular analysis, spectroscopy
Citation
Müller, K., Schellhammer, K. S., Gräßler, N., Debnath, B., Liu, F., Krupskaya, Y., et al. (2023). Directed exciton transport highways in organic semiconductors. 14. https://doi.org//10.1038/s41467-023-41044-9
License
CC BY 4.0 Unported