Freie Universität Berlin
Under the influence: Understanding the thermodynamic and optical properties of stimuli-responsive complex organic systems
Abstract
dc:description.abstractA solid understanding of the optical and thermodynamic features of a chemical system is indispensable for the development and optimisation of new materials. Stimuli-responsive substances may be incorporated into optoelectronic devices, such as organic light-emitting diodes or sensory systems. Especially in recent years, photo-sensitive molecular aggregates and redox-switchable supramolecular architectures have proven their merit. Due to their flexible components, these noncovalently bound systems often exhibit perplexing behaviour when submitted to external stimuli, such as light or electric potential. Examples addressed in this thesis include substitution-pattern controlled fluorescence quantum yields and redox-induced switchable spectroscopic responses. While there are plenty of powerful experimental techniques around to examine the underlying mechanisms, high-level quantum-chemical approaches are often crucial for a final and conclusive interpretation of one’s experimental results. The aim of this thesis is to examine the broad scope of stimuli-responsive molecular aggregates and demonstrate the versatility of quantum-chemical methods to study their optical and thermodynamic properties. To this end, I will present six different publications separated into two parts, A and B, each contributing three papers. Due to the variety of the molecules studied in this work, computational protocols effectively tailored for each project had to be developed. The applied methods are used to study electronic as well as molecular structures and include solvent and finite-temperature effects for comparison to experiment. A major emphasis is put on the evaluation of excited states. In addition to the valuable knowledge we could gain about the underlying chemistry of the investigated systems, these protocols serve as a potent tool for the examination of similar problems. All papers include combined approaches of theory and experiment and, hence, showcase the efficient collaboration of experimental and theoretical groups. In part A, I will present a new class of fluorescent dyes: Diaminodicyanoquinones (DADQs). Owing to a large dipole moment, redox-activity, and tailorable fluorescence, DADQs are promising candidates for a variety of applications in the context of molecular electronics. Papers A1-A3 effectively follow a bottom-up approach examining monomers, aggregates in solution, and the solid state with a focus on their absorption and emission features. In all three publications, remarkable experimental observations are made including notably high quantum yields and counterintuitive concentration-dependent absorption peaks. In each case, a combination of multiple high-level state-of-the-art quantum-chemical approaches including DFT/MRCI (density functional theory/multi-reference configuration interaction) is utilised to thoroughly investigate the chemical systems and find explanations for the often unexpected experimental results. Part B presents three different redox-responsive supramolecular systems, each displaying intriguing thermodynamic or optical properties, which could only be fully unravelled by rigorous theoretical studies. Redox-responsiveness is induced either by incorporation of the organosulfur compound tetrathiafulvalene (TTF) or by complexation with a redox-active molecule such as cobaltocene. A variety of different quantum-chemical methods based on DFT and time-dependent DFT (TD-DFT) is employed in the course of part B to study switching mechanisms and rationalise thermodynamic features. In this way, the examined supramolecular structures are now equipped with an in-depth understanding of their often non-trivial chemical behaviour which paves the way towards applications in novel optoelectronic technologies.
Author and committee
dc:creator, dc:contributor.*- Author dc:creator
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- Witte, Jan Felix
Subjects
dc:subject × 8Rights
- Licence dc:rights.uri
- Language dc:language
- eng
Identifiers
dc:identifier.*- Identifier URI
- http://dx.doi.org/10.17169/refubium-30051