Self-Stable Precipitation Polymerization Molecular Entanglement Effect and Molecular Weight Simulations and Experiments

In this paper, we developed a reactive molecular dynamics (RMD) scheme to simulate the Self-Stable Precipitation (SP) polymerization of 1-pentene and cyclopentene (C5) with maleic anhydride (MAn) in an all-atom resolution. We studied the chain propagation mechanism by tracking the changes in molecul...

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Main Authors: Jiali Qu, Yi Gao, Wantai Yang
Format: Article
Language:English
Published: MDPI AG 2021-07-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/13/14/2243
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spelling doaj-060f0f1c6e244e84bea80eddde9cc2a52021-07-23T14:02:18ZengMDPI AGPolymers2073-43602021-07-01132243224310.3390/polym13142243Self-Stable Precipitation Polymerization Molecular Entanglement Effect and Molecular Weight Simulations and ExperimentsJiali Qu0Yi Gao1Wantai Yang2College of Materials Science and Engineering, Beijing University of Chemical Technology, Beijing 100029, ChinaCollege of Materials Science and Engineering, Beijing University of Chemical Technology, Beijing 100029, ChinaCollege of Materials Science and Engineering, Beijing University of Chemical Technology, Beijing 100029, ChinaIn this paper, we developed a reactive molecular dynamics (RMD) scheme to simulate the Self-Stable Precipitation (SP) polymerization of 1-pentene and cyclopentene (C5) with maleic anhydride (MAn) in an all-atom resolution. We studied the chain propagation mechanism by tracking the changes in molecular conformation and analyzing end-to-end distance and radius of gyration. The results show that the main reason of chain termination in the reaction process was due to intramolecular cyclic entanglement, which made the active center wrapped in the center of the globular chain. After conducting the experiment in the same condition with the simulation, we found that the distribution trend and peak value of the molecular-weight-distribution curve in the simulation were consistent with experimental results. The simulated number average molecular weight (Mn) and weight average molecular weight (Mw) were in good agreement with the experiment. Moreover, the simulated molecular polydispersity index (PDI) for cyclopentene reaction with maleic anhydride was accurate, differing by 0.04 from the experimental value. These show that this model is suitable for C5–maleic anhydride self-stable precipitation polymerization and is expected to be used as a molecular weight prediction tool for other maleic anhydride self-stable precipitation polymerization system.https://www.mdpi.com/2073-4360/13/14/2243reactive molecular dynamicsself-stable precipitationmaleic anhydridemolecular weight
collection DOAJ
language English
format Article
sources DOAJ
author Jiali Qu
Yi Gao
Wantai Yang
spellingShingle Jiali Qu
Yi Gao
Wantai Yang
Self-Stable Precipitation Polymerization Molecular Entanglement Effect and Molecular Weight Simulations and Experiments
Polymers
reactive molecular dynamics
self-stable precipitation
maleic anhydride
molecular weight
author_facet Jiali Qu
Yi Gao
Wantai Yang
author_sort Jiali Qu
title Self-Stable Precipitation Polymerization Molecular Entanglement Effect and Molecular Weight Simulations and Experiments
title_short Self-Stable Precipitation Polymerization Molecular Entanglement Effect and Molecular Weight Simulations and Experiments
title_full Self-Stable Precipitation Polymerization Molecular Entanglement Effect and Molecular Weight Simulations and Experiments
title_fullStr Self-Stable Precipitation Polymerization Molecular Entanglement Effect and Molecular Weight Simulations and Experiments
title_full_unstemmed Self-Stable Precipitation Polymerization Molecular Entanglement Effect and Molecular Weight Simulations and Experiments
title_sort self-stable precipitation polymerization molecular entanglement effect and molecular weight simulations and experiments
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2021-07-01
description In this paper, we developed a reactive molecular dynamics (RMD) scheme to simulate the Self-Stable Precipitation (SP) polymerization of 1-pentene and cyclopentene (C5) with maleic anhydride (MAn) in an all-atom resolution. We studied the chain propagation mechanism by tracking the changes in molecular conformation and analyzing end-to-end distance and radius of gyration. The results show that the main reason of chain termination in the reaction process was due to intramolecular cyclic entanglement, which made the active center wrapped in the center of the globular chain. After conducting the experiment in the same condition with the simulation, we found that the distribution trend and peak value of the molecular-weight-distribution curve in the simulation were consistent with experimental results. The simulated number average molecular weight (Mn) and weight average molecular weight (Mw) were in good agreement with the experiment. Moreover, the simulated molecular polydispersity index (PDI) for cyclopentene reaction with maleic anhydride was accurate, differing by 0.04 from the experimental value. These show that this model is suitable for C5–maleic anhydride self-stable precipitation polymerization and is expected to be used as a molecular weight prediction tool for other maleic anhydride self-stable precipitation polymerization system.
topic reactive molecular dynamics
self-stable precipitation
maleic anhydride
molecular weight
url https://www.mdpi.com/2073-4360/13/14/2243
work_keys_str_mv AT jialiqu selfstableprecipitationpolymerizationmolecularentanglementeffectandmolecularweightsimulationsandexperiments
AT yigao selfstableprecipitationpolymerizationmolecularentanglementeffectandmolecularweightsimulationsandexperiments
AT wantaiyang selfstableprecipitationpolymerizationmolecularentanglementeffectandmolecularweightsimulationsandexperiments
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