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Highly Flowable Nano TiO(2)/Porous Organic Polymer (POP) Supports for Efficient Metallocene Catalysts

Porous organic polymers (POPs) have proven to be an efficient support in the olefin polymerization catalyst field. In this paper, nano TiO(2) beads were used to modulate the pore structure, bulk density, and surface morphology and flowability of the prepared POPs. With the incorporation of the hydro...

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Autores principales: Wang, Xiong, Kang, Wenqian, Gao, Lin, Li, Guangquan, Chen, Xuerong, Guo, Yi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7823374/
https://www.ncbi.nlm.nih.gov/pubmed/33383832
http://dx.doi.org/10.3390/nano11010060
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author Wang, Xiong
Kang, Wenqian
Gao, Lin
Li, Guangquan
Chen, Xuerong
Guo, Yi
author_facet Wang, Xiong
Kang, Wenqian
Gao, Lin
Li, Guangquan
Chen, Xuerong
Guo, Yi
author_sort Wang, Xiong
collection PubMed
description Porous organic polymers (POPs) have proven to be an efficient support in the olefin polymerization catalyst field. In this paper, nano TiO(2) beads were used to modulate the pore structure, bulk density, and surface morphology and flowability of the prepared POPs. With the incorporation of the hydrophilic nano TiO(2) beads, the prepared TiO(2)/POP supports obtained reasonable specific surface area (100–300 m(2)/g) and higher bulk density (0.26–0.35 g/mL) and flowability than the pure POP supports. The results show that bulk density of the prepared TiO(2)/POP particles increased when adding an increased amount of TiO(2), and when 37.5% TiO(2) (weight percent to the total comonomers divinylbenzene (DVB) and 2-hydroxyethyl methacrylate (HEMA)) and 3:1 DVB/HEMA (molar ratio) were added, highly flowable TiO(2)/POP composites (POP-6 and POP-7) were obtained. With the modulation of the nano TiO(2) template during the support synthesis, the prepared POP-7 particles successfully achieved a normal distribution with a narrow particle size distribution (PSD) of 0.717 and average particle size of 24.1 μm, a specific surface area (SSA) of 279 m(2)/g, and relatively high bulk density of 0.30 g/mL. Furthermore, all the prepared TiO(2)/POP supports obtained higher ethylene polymerization activity than silica gel-supported commercial metallocene catalyst. The immobilized (n-BuCp)(2)ZrCl(2)/MAO@POP-7 catalyst exhibited the highest ethylene polymerization activity of 4794 kg PE/mol Zr.bar.h and productivity of 389 g PE/g cat, more than twice that of the commercial counterpart. Even higher catalyst productivity (3197 g PE/g cat) and bulk density of the produced PE (0.36 g/mL) could be obtained in higher ethylene partial pressure at 80 °C for 2 h, and the prepared TiO(2)/POP catalyst shows no obvious Zr(+) active sites decay during the ethylene polymerization.
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spelling pubmed-78233742021-01-24 Highly Flowable Nano TiO(2)/Porous Organic Polymer (POP) Supports for Efficient Metallocene Catalysts Wang, Xiong Kang, Wenqian Gao, Lin Li, Guangquan Chen, Xuerong Guo, Yi Nanomaterials (Basel) Article Porous organic polymers (POPs) have proven to be an efficient support in the olefin polymerization catalyst field. In this paper, nano TiO(2) beads were used to modulate the pore structure, bulk density, and surface morphology and flowability of the prepared POPs. With the incorporation of the hydrophilic nano TiO(2) beads, the prepared TiO(2)/POP supports obtained reasonable specific surface area (100–300 m(2)/g) and higher bulk density (0.26–0.35 g/mL) and flowability than the pure POP supports. The results show that bulk density of the prepared TiO(2)/POP particles increased when adding an increased amount of TiO(2), and when 37.5% TiO(2) (weight percent to the total comonomers divinylbenzene (DVB) and 2-hydroxyethyl methacrylate (HEMA)) and 3:1 DVB/HEMA (molar ratio) were added, highly flowable TiO(2)/POP composites (POP-6 and POP-7) were obtained. With the modulation of the nano TiO(2) template during the support synthesis, the prepared POP-7 particles successfully achieved a normal distribution with a narrow particle size distribution (PSD) of 0.717 and average particle size of 24.1 μm, a specific surface area (SSA) of 279 m(2)/g, and relatively high bulk density of 0.30 g/mL. Furthermore, all the prepared TiO(2)/POP supports obtained higher ethylene polymerization activity than silica gel-supported commercial metallocene catalyst. The immobilized (n-BuCp)(2)ZrCl(2)/MAO@POP-7 catalyst exhibited the highest ethylene polymerization activity of 4794 kg PE/mol Zr.bar.h and productivity of 389 g PE/g cat, more than twice that of the commercial counterpart. Even higher catalyst productivity (3197 g PE/g cat) and bulk density of the produced PE (0.36 g/mL) could be obtained in higher ethylene partial pressure at 80 °C for 2 h, and the prepared TiO(2)/POP catalyst shows no obvious Zr(+) active sites decay during the ethylene polymerization. MDPI 2020-12-29 /pmc/articles/PMC7823374/ /pubmed/33383832 http://dx.doi.org/10.3390/nano11010060 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wang, Xiong
Kang, Wenqian
Gao, Lin
Li, Guangquan
Chen, Xuerong
Guo, Yi
Highly Flowable Nano TiO(2)/Porous Organic Polymer (POP) Supports for Efficient Metallocene Catalysts
title Highly Flowable Nano TiO(2)/Porous Organic Polymer (POP) Supports for Efficient Metallocene Catalysts
title_full Highly Flowable Nano TiO(2)/Porous Organic Polymer (POP) Supports for Efficient Metallocene Catalysts
title_fullStr Highly Flowable Nano TiO(2)/Porous Organic Polymer (POP) Supports for Efficient Metallocene Catalysts
title_full_unstemmed Highly Flowable Nano TiO(2)/Porous Organic Polymer (POP) Supports for Efficient Metallocene Catalysts
title_short Highly Flowable Nano TiO(2)/Porous Organic Polymer (POP) Supports for Efficient Metallocene Catalysts
title_sort highly flowable nano tio(2)/porous organic polymer (pop) supports for efficient metallocene catalysts
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7823374/
https://www.ncbi.nlm.nih.gov/pubmed/33383832
http://dx.doi.org/10.3390/nano11010060
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