A Ziegler-type spherical cap model reveals early stage ethylene polymerization growth versus catalyst fragmentation relationships

Publication date

2022-08-24

Authors

Bossers, Koen W.ISNI 0000000492988190
Mandemaker, LaurensORCID 0000-0003-2630-7855ISNI 000000049261341X
Nikolopoulos, NikolaosISNI 0000000492915004
Liu, YuanshuaiISNI 0000000506807937
Rohnke, Marcus
de Peinder, PeterISNI 0000000419487066
Terlingen, Bas Johan PieterISNI 0000000507449772
Walther, Felix
Dorresteijn, Joren MatthijsISNI 0000000492853050
Hartman, ThomasISNI 0000000492609496

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Document Type

Article
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cc_by

Abstract

Polyolefin catalysts are characterized by their hierarchically complex nature, which complicates studies on the interplay between the catalyst and formed polymer phases. Here, the missing link in the morphology gap between planar model systems and industrially relevant spherical catalyst particles is introduced through the use of a spherical cap Ziegler-type catalyst model system for the polymerization of ethylene. More specifically, a moisture-stable LaOCl framework with enhanced imaging contrast has been designed to support the TiCl4 pre-active site, which could mimic the behaviour of the highly hygroscopic and industrially used MgCl2 framework. As a function of polymerization time, the fragmentation behaviour of the LaOCl framework changed from a mixture of the shrinking core (i.e., peeling off small polyethylene fragments at the surface) and continuous bisection (i.e., internal cleavage of the framework) into dominantly a continuous bisection model, which is linked to the evolution of the estimated polyethylene volume and the fraction of crystalline polyethylene formed. The combination of the spherical cap model system and the used advanced micro-spectroscopy toolbox, opens the route for high-throughput screening of catalyst functions with industrially relevant morphologies on the nano-scale.

Keywords

General Chemistry, General Biochemistry,Genetics and Molecular Biology, General, General Physics and Astronomy

Citation

Bossers, K W, Mandemaker, L D B, Nikolopoulos, N, Liu, Y, Rohnke, M, de Peinder, P, Terlingen, B J P, Walther, F, Dorresteijn, J M, Hartman, T & Weckhuysen, B M 2022, 'A Ziegler-type spherical cap model reveals early stage ethylene polymerization growth versus catalyst fragmentation relationships', Nature Communications, vol. 13, no. 1, 4954. https://doi.org/10.1038/s41467-022-32635-z