Exciton Dynamics in Conjugated Polymers
William Barford

TL;DR
This review discusses the complex exciton dynamics in conjugated polymers across multiple scales, emphasizing the importance of quantum mechanical models and the influence of disorder on exciton behavior.
Contribution
It provides a comprehensive overview of exciton processes, including ultrafast decoherence and transfer mechanisms, highlighting the need for advanced quantum models and numerical techniques.
Findings
Ultrafast intrachain exciton decoherence occurs within 10 fs.
Exciton diffusion is influenced by torsional fluctuations and disorder.
A first-principles Forster-type model describes exciton transfer.
Abstract
This is a review of exciton dynamics in conjugated polymers. Exciton dynamics encompass multiple time and length scales. Ultrafast femtosecond processes are intrachain and involve a quantum mechanical correlation of the exciton and nuclear degrees of freedom. In contrast, post-picosecond processes involve the incoherent Forster transfer of excitons between polymer chains. Exciton dynamics is also strongly determined by the spatial and temporal disorder that is ubiquitous in conjugated polymers. Since excitons are delocalized over hundreds of atoms, a theoretical understanding of these processes is only realistically possible by employing suitably parametrized coarse-grained exciton-phonon models. Moreover, to correctly account for ultrafast processes, the exciton and phonon modes must be treated on the same quantum mechanical basis and the Ehrenfest approximation must be abandoned. This…
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Taxonomy
TopicsOrganic Electronics and Photovoltaics · Conducting polymers and applications · Molecular Junctions and Nanostructures
