2022
DOI: 10.1021/acsomega.2c02650
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Application of Machine Learning in Developing Quantitative Structure–Property Relationship for Electronic Properties of Polyaromatic Compounds

Abstract: The degree of π orbital overlap (DPO) model has been demonstrated to be an excellent quantitative structure–property relationship (QSPR) that can map two-dimensional structural information of polycyclic aromatic hydrocarbons (PAHs) and thienoacenes to their electronic properties, namely, band gaps, electron affinities, and ionization potentials. However, the model suffers from significant limitations that narrow its applications due to inefficient manual procedures in parameter optimization and descriptor form… Show more

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Cited by 6 publications
(21 citation statements)
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References 37 publications
(83 reference statements)
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“…In this study, the truncated DPO model is optimized with the ML-based method, which is an iterative process that has been proposed previously for optimizing the DPO model’s parameters. To concisely include the new S DPO descriptor in this process, let X i [ t ] be a vector that is composed of both the DPO value and the S DPO value of the i -th compound as below: X i false[ t false] = [ lefttrue normalD normalP normalO i ( a [ t ] , b [ t ] , c [ t ] , d [ t ] ) S D P O , i ( s [ t ] ) 0.25em ] where the superscript t denotes the t th iteration.…”
Section: Resultsmentioning
confidence: 99%
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“…In this study, the truncated DPO model is optimized with the ML-based method, which is an iterative process that has been proposed previously for optimizing the DPO model’s parameters. To concisely include the new S DPO descriptor in this process, let X i [ t ] be a vector that is composed of both the DPO value and the S DPO value of the i -th compound as below: X i false[ t false] = [ lefttrue normalD normalP normalO i ( a [ t ] , b [ t ] , c [ t ] , d [ t ] ) S D P O , i ( s [ t ] ) 0.25em ] where the superscript t denotes the t th iteration.…”
Section: Resultsmentioning
confidence: 99%
“…Consequently, errors of the bandgap and EA, IP properties converge to around 0.12 and 0.10–0.11eV, respectively, with only 50 training data points, roughly 10% of the training set. This finding is consistent with our previous study for PAH and thienoacene chemical classes.…”
Section: Resultsmentioning
confidence: 99%
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