Xuesong Zhang, Ge Kong, Yuan Jiang, Linling Zhou, Kejie Wang, Xin Zhang, Guanya Ji, Lujia Han
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引用次数: 0
Abstract
Plastic waste disposal is mounting, with consequences for both environmental and human wellbeing. Addressing the plastic waste challenge through chemically upcycling waste to other products is gaining momentum but can have trade-offs. For example, the conversion of plastic waste into hydrogen rich gas can be achieved via catalytic steam, but this process can release large quantities of CO2 (∼12 kg CO2 per 1 kg H2 production). High-performance bifunctional catalysts, such as carbon nanotubes (CNTs), offer a potential solution, but suppressing CO2 emissions without compromising H2-rich gas yield remains challenging. Here, we synthesize a new CNTs-bridging nanocomposite by integrating Ni nanoparticles with HY zeolite. Employing this bifunctional CNTs-bridging nanocomposite in the catalytic steam reforming of polyethylene can achieve high-quality H2 yields of up to 2,340 mL/gplastic and a 77% reduction in CO2 emissions (1.68 g CO2 per 1 g H2 production). This work introduces an innovative CNTs-bridging strategy to valorize plastic waste into high-quality H2-rich syngas while suppressing CO2 emissions.
One EarthEnvironmental Science-Environmental Science (all)
CiteScore
18.90
自引率
1.90%
发文量
159
期刊介绍:
One Earth, Cell Press' flagship sustainability journal, serves as a platform for high-quality research and perspectives that contribute to a deeper understanding and resolution of contemporary sustainability challenges. With monthly thematic issues, the journal aims to bridge gaps between natural, social, and applied sciences, along with the humanities. One Earth fosters the cross-pollination of ideas, inspiring transformative research to address the complexities of sustainability.