Volume 4 Issue 2
您当前的位置:首页 > 期刊文章 > 过刊浏览 > Volume 4 (2006) > Volume 4 Issue 2
Beltramini, J. N. (2006). Catalytic conversion of municipal waste plastic into gasoline-range products over mesoporous materials. China Particuology, 4(2), 80–82. https://doi.org/10.1016/S1672-2515(07)60240-1

Catalytic conversion of municipal waste plastic into gasoline-range products over mesoporous materials

Jorge Norberto Beltramini a *
a ARC Centre for Functional Nanomaterials The University of Queensland, Brisbane, Queensland 4072, Australia
10.1016/S1672-2515(07)60240-1
Volume 4, Issue 2, April 2006, Pages 80-82
Received 6 February 2006, Accepted 8 March 2006, Available online 27 November 2007.
E-mail: jorgeb@cheque.uq.edu.au

Highlights

Abstract

In the last 20 years, it has become apparent that waste produced from plastics was becoming an environmental problem because of their low biodegradability. Though several methods have been proposed for recycling waste plastics, it is generally accepted that material recovery is not a long-term solution to the present problem, and that energy or chemical recovery is a more attractive alternative, including cracking into the monomer constituents, combustion to produce energy, and thermal or catalytic conversion to produce useful intermediate chemicals.

This paper is a contribution in the area of the last option for energy recovery. There have been a number of publications reporting the use of molecular sieves and amorphous silica-alumina catalysts for the cracking of polymers into a range of hydrocarbons. The research work reported here demonstrates the ability of mesoporous catalysts in cracking polyethylene into gasoline range products.

It was found that for mesoporous MCM-41 catalysts, its cracking activity increases with its crystallinity, displaying higher activity with smaller pore diameters. The hydrocarbon product distribution strongly indicates a carbenium ion cracking mechanism. The product distribution was also compared with those obtained from thermal cracking tests.

Graphical abstract
Keywords

waste plastic; mesoporous materials; polyethylene cracking; MCM-41