Study on Thermal Decomposition Behaviors of Terpolymers of Carbon Dioxide, Propylene Oxide, and Cyclohexene Oxide

The terpolymerization of carbon dioxide (CO<sub>2</sub>), propylene oxide (PO), and cyclohexene oxide (CHO) were performed by both random polymerization and block polymerization to synthesize the random poly (propylene cyclohexene carbonate) (PPCHC), di-block polymers of poly (propylene...

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Main Authors: Shaoyun Chen, Min Xiao, Luyi Sun, Yuezhong Meng
Format: Article
Language:English
Published: MDPI AG 2018-11-01
Series:International Journal of Molecular Sciences
Subjects:
Online Access:https://www.mdpi.com/1422-0067/19/12/3723
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spelling doaj-38ec4f8d0b934d148ad262c86ca73f222020-11-24T21:21:07ZengMDPI AGInternational Journal of Molecular Sciences1422-00672018-11-011912372310.3390/ijms19123723ijms19123723Study on Thermal Decomposition Behaviors of Terpolymers of Carbon Dioxide, Propylene Oxide, and Cyclohexene OxideShaoyun Chen0Min Xiao1Luyi Sun2Yuezhong Meng3College of Chemical Engineering and Materials Science, Quanzhou Normal University, Quanzhou 362000, ChinaThe Key Laboratory of Low-carbon Chemistry &amp; Energy Conservation of Guangdong Province/State Key Laboratory of Optoelectronic Materials and Technologies, Sun Yat-Sen University, Guangzhou 510275, ChinaDepartment of Chemical &amp; Biomolecular Engineering and Polymer Program, Institute of Materials Science, University of Connecticut, Storrs, CT 06269, USAThe Key Laboratory of Low-carbon Chemistry &amp; Energy Conservation of Guangdong Province/State Key Laboratory of Optoelectronic Materials and Technologies, Sun Yat-Sen University, Guangzhou 510275, ChinaThe terpolymerization of carbon dioxide (CO<sub>2</sub>), propylene oxide (PO), and cyclohexene oxide (CHO) were performed by both random polymerization and block polymerization to synthesize the random poly (propylene cyclohexene carbonate) (PPCHC), di-block polymers of poly (propylene carbonate&#8315;cyclohexyl carbonate) (PPC-PCHC), and tri-block polymers of poly (cyclohexyl carbonate&#8315;propylene carbonate&#8315;cyclohexyl carbonate) (PCHC-PPC-PCHC). The kinetics of the thermal degradation of the terpolymers was investigated by the multiple heating rate method (Kissinger-Akahira-Sunose (KAS) method), the single heating rate method (Coats-Redfern method), and the Isoconversional kinetic analysis method proposed by Vyazovkin with the data from thermogravimetric analysis under dynamic conditions. The values of ln k vs. T<sup>&#8722;1</sup> for the thermal decomposition of four polymers demonstrate the thermal stability of PPC and PPC-PCHC are poorer than PPCHC and PCHC-PPC-PCHC. In addition, for PPCHC and PCHC-PPC-PCHC, there is an intersection between the two rate constant lines, which means that, for thermal stability of PPCHC, it is more stable than PCHC-PPC-PCHC at the temperature less than 309 &#176;C and less stable when the decomposed temperature is more than 309 &#176;C. Pyrolysis-gas chromatography/mass spectrometry (Py-GC/MS) and thermogravimetric analysis/infrared spectrometry (TG/FTIR) techniques were applied to investigate the thermal degradation behavior of the polymers. The results showed that unzipping was the main degradation mechanism of all polymers so the final pyrolysates were cyclic propylene carbonate and cyclic cyclohexene carbonate. For the block copolymers, the main chain scission reaction first occurs at PC-PC linkages initiating an unzipping reaction of PPC chain and then, at CHC&#8315;CHC linkages, initiating an unzipping reaction of the PCHC chain. That is why the T<sub>&#8722;5%</sub> of di-block and tri-block polymers were not much higher than that of PPC while two maximum decomposition temperatures were observed for both the block copolymer and the second one were much higher than that of PPC. For PPCHC, the random arranged bulky cyclohexane groups in the polymer chain can effectively suppress the backbiting process and retard the unzipping reaction. Thus, it exhibited much higher T<sub>&#8722;5%</sub> than that of PPC and block copolymers.https://www.mdpi.com/1422-0067/19/12/3723polycarbonatethermal decomposition kineticsTG/FTIRPy-GC/MS
collection DOAJ
language English
format Article
sources DOAJ
author Shaoyun Chen
Min Xiao
Luyi Sun
Yuezhong Meng
spellingShingle Shaoyun Chen
Min Xiao
Luyi Sun
Yuezhong Meng
Study on Thermal Decomposition Behaviors of Terpolymers of Carbon Dioxide, Propylene Oxide, and Cyclohexene Oxide
International Journal of Molecular Sciences
polycarbonate
thermal decomposition kinetics
TG/FTIR
Py-GC/MS
author_facet Shaoyun Chen
Min Xiao
Luyi Sun
Yuezhong Meng
author_sort Shaoyun Chen
title Study on Thermal Decomposition Behaviors of Terpolymers of Carbon Dioxide, Propylene Oxide, and Cyclohexene Oxide
title_short Study on Thermal Decomposition Behaviors of Terpolymers of Carbon Dioxide, Propylene Oxide, and Cyclohexene Oxide
title_full Study on Thermal Decomposition Behaviors of Terpolymers of Carbon Dioxide, Propylene Oxide, and Cyclohexene Oxide
title_fullStr Study on Thermal Decomposition Behaviors of Terpolymers of Carbon Dioxide, Propylene Oxide, and Cyclohexene Oxide
title_full_unstemmed Study on Thermal Decomposition Behaviors of Terpolymers of Carbon Dioxide, Propylene Oxide, and Cyclohexene Oxide
title_sort study on thermal decomposition behaviors of terpolymers of carbon dioxide, propylene oxide, and cyclohexene oxide
publisher MDPI AG
series International Journal of Molecular Sciences
issn 1422-0067
publishDate 2018-11-01
description The terpolymerization of carbon dioxide (CO<sub>2</sub>), propylene oxide (PO), and cyclohexene oxide (CHO) were performed by both random polymerization and block polymerization to synthesize the random poly (propylene cyclohexene carbonate) (PPCHC), di-block polymers of poly (propylene carbonate&#8315;cyclohexyl carbonate) (PPC-PCHC), and tri-block polymers of poly (cyclohexyl carbonate&#8315;propylene carbonate&#8315;cyclohexyl carbonate) (PCHC-PPC-PCHC). The kinetics of the thermal degradation of the terpolymers was investigated by the multiple heating rate method (Kissinger-Akahira-Sunose (KAS) method), the single heating rate method (Coats-Redfern method), and the Isoconversional kinetic analysis method proposed by Vyazovkin with the data from thermogravimetric analysis under dynamic conditions. The values of ln k vs. T<sup>&#8722;1</sup> for the thermal decomposition of four polymers demonstrate the thermal stability of PPC and PPC-PCHC are poorer than PPCHC and PCHC-PPC-PCHC. In addition, for PPCHC and PCHC-PPC-PCHC, there is an intersection between the two rate constant lines, which means that, for thermal stability of PPCHC, it is more stable than PCHC-PPC-PCHC at the temperature less than 309 &#176;C and less stable when the decomposed temperature is more than 309 &#176;C. Pyrolysis-gas chromatography/mass spectrometry (Py-GC/MS) and thermogravimetric analysis/infrared spectrometry (TG/FTIR) techniques were applied to investigate the thermal degradation behavior of the polymers. The results showed that unzipping was the main degradation mechanism of all polymers so the final pyrolysates were cyclic propylene carbonate and cyclic cyclohexene carbonate. For the block copolymers, the main chain scission reaction first occurs at PC-PC linkages initiating an unzipping reaction of PPC chain and then, at CHC&#8315;CHC linkages, initiating an unzipping reaction of the PCHC chain. That is why the T<sub>&#8722;5%</sub> of di-block and tri-block polymers were not much higher than that of PPC while two maximum decomposition temperatures were observed for both the block copolymer and the second one were much higher than that of PPC. For PPCHC, the random arranged bulky cyclohexane groups in the polymer chain can effectively suppress the backbiting process and retard the unzipping reaction. Thus, it exhibited much higher T<sub>&#8722;5%</sub> than that of PPC and block copolymers.
topic polycarbonate
thermal decomposition kinetics
TG/FTIR
Py-GC/MS
url https://www.mdpi.com/1422-0067/19/12/3723
work_keys_str_mv AT shaoyunchen studyonthermaldecompositionbehaviorsofterpolymersofcarbondioxidepropyleneoxideandcyclohexeneoxide
AT minxiao studyonthermaldecompositionbehaviorsofterpolymersofcarbondioxidepropyleneoxideandcyclohexeneoxide
AT luyisun studyonthermaldecompositionbehaviorsofterpolymersofcarbondioxidepropyleneoxideandcyclohexeneoxide
AT yuezhongmeng studyonthermaldecompositionbehaviorsofterpolymersofcarbondioxidepropyleneoxideandcyclohexeneoxide
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