2019
DOI: 10.48550/arxiv.1909.10768
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From absorption spectra to charge transfer in PEDOT nanoaggregates with machine learning

Loïc M. Roch,
Semion K. Saikin,
Florian Häse
et al.

Abstract: Fast and inexpensive characterization of materials properties is a key element to discover novel functional materials. In this work, we suggest an approach employing three classes of Bayesian machine learning (ML) models to correlate electronic absorption spectra of nanoaggregates with the strength of intermolecular electronic couplings in organic conducting and semiconducting materials. As a specific model system, we consider PEDOT:PSS, a cornerstone material for organic electronic applications, and so analyz… Show more

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