Chem. J. Chinese Universities ›› 2018, Vol. 39 ›› Issue (8): 1806.doi: 10.7503/cjcu20170841

• Polymer Chemistry • Previous Articles     Next Articles

Synthesis of TiCl3 Complexes Containing Aryloxy Groups and Application for Ethylene Polymerization and Copolymerization

WANG Jianwei, REN Yingchun, MI Puke*(), XU Sheng*()   

  1. School of Materials Science and Engineering, School of Chemistry and Molecular Engineering,Shanghai Key Laboratory of Advance Materials,Key Laboratory for Ultrafine Materials, Ministry of Education,East China University of Science and Technology, Shanghai 200237, China
  • Received:2017-12-22 Online:2018-08-10 Published:2018-05-14
  • Contact: MI Puke,XU Sheng E-mail:pkmi@ecust.edu.cn;xusheng@ecust.edu.cn

Abstract:

Novel olefin polymerization catalysts with lower cost and simple synthetic process were developed. ArOTiCl3 complexes[(2-OMeC6H4O)TiCl3(C1), (2,4-Me2C6H3O)TiCl3(C2), TiCl3(1,4-OC6H4O)TiCl3(C3), TiCl3(1,4-OC6H2O-Me2-2,5)TiCl3(C4)] and corresponding (ArO)2TiCl2 complexes [TiCl2·(OC6H4-OMe-2)2(C5) and TiCl2(OC6H3-Me2-2,6)2(C6)] were synthesized and well characterized. When combined with methylaluminoxane(MAO), the ArOTiCl3 /MAO system shows moderate activity for ethylene copolymerization with 1-hexene. The 13C NMR result of polymer indicates that the 1-hexene incorporation in polymer reached up to 6.88%(molar fraction). The polymer was characterized by 13C NMR and the mechanisms of methyl, ethyl and long side chain formation were given. The effects of polymerization temperature, concentration of polymerization monomer and polymerization time on the catalytic activity were investigated.

Key words: ArOTiCl3 complex, Olefin polymerization catalyst, Ethylene/1-hexene copolymerization

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