Preparation of high quality carbon nanotubes by catalytic pyrolysis of waste plastics using FeNi-based catalyst

IF 7.1 2区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL Waste management Pub Date : 2024-08-13 DOI:10.1016/j.wasman.2024.08.005
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Abstract

Plastic waste pollution is the serious environmental problem, and catalytic pyrolysis of waste plastics is an effective way to solve this problem. Carbon nanotubes (CNTs) are prepared by catalytic pyrolysis of low-density polyethylene (LDPE) waste plastics by one-stage method using iron nitrate and nickel nitrate as catalyst. The growth mechanism of CNTs is analyzed in detail. TPO, XRD, SEM and Raman analyses show that increasing Ni content contributes to the production of CNTs with good morphology and high graphitization degree. While the increasing Fe content contributes to improving the yield of CNTs. The outer and inner diameters of the FeNi12-CNTs-800 are about 21 nm and 8 nm with the length of 18.9 μm, respectively. LDPE pyrolysis gases are analyzed to determine that the primary carbon source required for CNTs growth is C2H4. The C2H4 adsorption and decomposition processes on FeNi alloys are performed to reveal the growth mechanism of CNTs, based on density functional theory calculation. Three kinds of the growth models are proposed to explain the difference of the CNTs tubular shape. FeNi12-CNTs-800 are used to remove microplastics from wastewater due to existence of magnetic. PVC can be quickly removed from wastewater with removal of 100 % at 20 min. This study provides an effective way for recycling and treatment of waste plastic.

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使用镍铁基催化剂催化热解废塑料制备高质量纳米碳管
塑料垃圾污染是严重的环境问题,而催化热解废塑料是解决这一问题的有效途径。本研究以硝酸铁和硝酸镍为催化剂,采用一步法催化热解低密度聚乙烯(LDPE)废塑料,制备了碳纳米管(CNTs)。详细分析了 CNTs 的生长机理。TPO、XRD、SEM 和拉曼分析表明,镍含量的增加有助于生成具有良好形态和较高石墨化程度的 CNT。而增加铁的含量则有助于提高 CNT 的产量。FeNi12-CNTs-800 的外径和内径分别约为 21 nm 和 8 nm,长度为 18.9 μm。通过分析低密度聚乙烯热解气体,确定碳纳米管生长所需的主要碳源是 C2H4。基于密度泛函理论计算,研究了 C2H4 在铁镍合金上的吸附和分解过程,揭示了 CNTs 的生长机理。提出了三种生长模型来解释 CNTs 管状形状的差异。由于存在磁性,FeNi12-CNTs-800 可用于去除废水中的微塑料。废水中的 PVC 可在 20 分钟内被快速去除,去除率达 100%。这项研究为废塑料的回收和处理提供了一种有效的方法。
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来源期刊
Waste management
Waste management 环境科学-工程:环境
CiteScore
15.60
自引率
6.20%
发文量
492
审稿时长
39 days
期刊介绍: Waste Management is devoted to the presentation and discussion of information on solid wastes,it covers the entire lifecycle of solid. wastes. Scope: Addresses solid wastes in both industrialized and economically developing countries Covers various types of solid wastes, including: Municipal (e.g., residential, institutional, commercial, light industrial) Agricultural Special (e.g., C and D, healthcare, household hazardous wastes, sewage sludge)
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