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In SilicoPrediction of the Temperature-Dependent Decomposition Rate Coefficients of Symmetrical Azo Compounds

Authors :
Shi, Yajuan
Han, Jian-Peng
Yan, Fangyou
Luo, Zheng-Hong
Zhou, Yin-Ning
Source :
Industrial & Engineering Chemistry Research; November 2023, Vol. 62 Issue: 43 p17461-17472, 12p
Publication Year :
2023

Abstract

The decomposition rate coefficient (kd) is a crucial kinetic parameter for the decomposition of azo compounds. In this work, we develop quantitative structure–property relationship (QSPR) models for the first time to predict the decomposition kinetic parameters at a wide range of temperature for symmetrical azo compounds, including azonitriles, alkyl azo, and aryl azo. The models are developed based on norm index (NI) and quantum chemical (QC) descriptors, so-called lnkd(T, NI, QC) models. Based on the collected data, solvents have an apparent influence on the kdvalues for aryl azo, and the lnkd(T, NI, QC, sol)aryl azomodel with better performance than lnkd(T, NI, QC)aryl azomodel is thus developed. Meanwhile, the as-developed models are endowed with excellent accuracy in calculating the kdvalues of initiators, which can be further applied to new initiators beyond the data set used for modeling. Interestingly, both Arrhenius parameters and their temperatures at which the half-lives (t1/2) are 0.1, 1, and 10 h of azo initiators can be extrapolated from the established models. These data offer an insightful understanding of decomposition kinetics and facilitate the selection of appropriate initiators in radical polymerization. In the long term, it is expected that QSPR models with higher predictive accuracy based on the data collected from a wider range of experimental conditions can be developed, enabling the design and screening of new azo initiators.

Details

Language :
English
ISSN :
08885885 and 15205045
Volume :
62
Issue :
43
Database :
Supplemental Index
Journal :
Industrial & Engineering Chemistry Research
Publication Type :
Periodical
Accession number :
ejs64024083
Full Text :
https://doi.org/10.1021/acs.iecr.3c01877