中文版 | English
Title

A tridentate phenoxy-phosphine (POP) divalent chromium complex and its reactivities in olefin polymerization

Author
Corresponding AuthorZhou, Youyun; Gao, Yanshan; Tang, Yong
Publication Years
2023
DOI
Source Title
ISSN
1759-9954
EISSN
1759-9962
Abstract

We reported the synthesis and characterization of a Cr(ii) complex based on a tridentate phenoxy-phosphine ligand and comprehensively studied its reactivities in ethylene and norbornene homopolymerization and ethylene copolymerization with norbornene or 1-octene. Upon methylaluminoxane (MAO) activation, the precatalyst catalyzes ethylene polymerization with activities up to 331.7 kg (mol cat h)(-1). The polyethylene (PE) M-w and dispersity (D) can be flexibly tuned, ranging from predominantly high molecular weight (HMW, 42.3 kg mol(-1), 97.5 wt%) to mostly low molecular weight (LMW, 1.8 kg mol(-1), 94.8%), and from bimodal to nearly monomodal via changing MAO loadings and reaction temperatures. End group analysis by NMR shows beta-H elimination as the major chain termination pathway vs. chain transfer to AlMe3 as a minor pathway, forming vinyl-terminated PE and saturated PE, respectively; in the cases where vinyl-terminated LMW PE is formed, vinylidene and 1,2-substituted internal olefinic end groups can be observed at the expense of chain end vinyl and methyl groups. In norbornene homopolymerization, the catalytically active site is incapable of undergoing beta-H elimination and shows single-site catalytic behavior with chain transfer to AlMe3 as the sole chain transfer/termination pathway, which is confirmed by polymer NMR and MAO loading experiments. Interestingly, the catalyst system also exhibits single-site catalytic behavior in all the ethylene copolymerization experiments with NBE and 1-octene monomers as shown by copolymer GPC and NMR (H-1, C-13, DEPT, HMBC) studies, and exhibits unique monomer effects on catalytic behavior in terms of comonomer enchainment selectivity, M-w, and chain transfer/termination processes. The active species under different conditions were studied by UV-vis-NIR.;We reported the synthesis and characterization of a Cr(ii) complex based on a tridentate phenoxy-phosphine ligand and comprehensively studied its reactivities in ethylene and norbornene homopolymerization and ethylene copolymerization with norbornene or 1-octene. Upon methylaluminoxane (MAO) activation, the precatalyst catalyzes ethylene polymerization with activities up to 331.7 kg (mol cat h)(-1). The polyethylene (PE) M-w and dispersity (D) can be flexibly tuned, ranging from predominantly high molecular weight (HMW, 42.3 kg mol(-1), 97.5 wt%) to mostly low molecular weight (LMW, 1.8 kg mol(-1), 94.8%), and from bimodal to nearly monomodal via changing MAO loadings and reaction temperatures. End group analysis by NMR shows beta-H elimination as the major chain termination pathway vs. chain transfer to AlMe3 as a minor pathway, forming vinyl-terminated PE and saturated PE, respectively; in the cases where vinyl-terminated LMW PE is formed, vinylidene and 1,2-substituted internal olefinic end groups can be observed at the expense of chain end vinyl and methyl groups. In norbornene homopolymerization, the catalytically active site is incapable of undergoing beta-H elimination and shows single-site catalytic behavior with chain transfer to AlMe3 as the sole chain transfer/termination pathway, which is confirmed by polymer NMR and MAO loading experiments. Interestingly, the catalyst system also exhibits single-site catalytic behavior in all the ethylene copolymerization experiments with NBE and 1-octene monomers as shown by copolymer GPC and NMR (H-1, C-13, DEPT, HMBC) studies, and exhibits unique monomer effects on catalytic behavior in terms of comonomer enchainment selectivity, M-w, and chain transfer/termination processes. The active species under different conditions were studied by UV-vis-NIR.

URL[Source Record]
Indexed By
Language
English
SUSTech Authorship
First ; Corresponding
Funding Project
National Key R&D Program of China[2021YFA1501700] ; National Key R&D Program of China[2021YFA1501700] ; Southern University of Science and Technology, Guangdong Provincial Key Laboratory of Catalysis[2020B121201002] ; Southern University of Science and Technology, Guangdong Provincial Key Laboratory of Catalysis[2020B121201002]
WOS Research Area
Polymer Science ; Polymer Science
WOS Subject
Polymer Science ; Polymer Science
WOS Accession No
WOS:000917740900001
Publisher
Data Source
Web of Science
Citation statistics
Cited Times [WOS]:0
Document TypeJournal Article
Identifierhttp://kc.sustech.edu.cn/handle/2SGJ60CL/430735
DepartmentShenzhen Grubbs Institute
理学院_化学系
Affiliation
1.Southern Univ Sci & Technol, Shenzhen Grubbs Inst, Shenzhen, Guangdong, Peoples R China
2.Southern Univ Sci & Technol, Dept Chem, Shenzhen, Guangdong, Peoples R China
3.Southern Univ Sci & Technol, Guangdong Prov Key Lab Catalysis, Shenzhen, Guangdong, Peoples R China
4.Chinese Acad Sci, Shanghai Inst Organ Chem, State Key Lab Organometall Chem, Shanghai, Peoples R China
First Author AffilicationShenzhen Grubbs Institute;  Department of Chemistry;  Southern University of Science and Technology
Corresponding Author AffilicationShenzhen Grubbs Institute;  Department of Chemistry;  Southern University of Science and Technology;  
First Author's First AffilicationShenzhen Grubbs Institute
Recommended Citation
GB/T 7714
Ji, Li,Song, Ping,Zhou, Youyun,et al. A tridentate phenoxy-phosphine (POP) divalent chromium complex and its reactivities in olefin polymerization[J]. Polymer Chemistry,2023.
APA
Ji, Li,Song, Ping,Zhou, Youyun,Sun, Xiu-Li,Gao, Yanshan,&Tang, Yong.(2023).A tridentate phenoxy-phosphine (POP) divalent chromium complex and its reactivities in olefin polymerization.Polymer Chemistry.
MLA
Ji, Li,et al."A tridentate phenoxy-phosphine (POP) divalent chromium complex and its reactivities in olefin polymerization".Polymer Chemistry (2023).
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