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纳米级炭黑与 Ni2O3 结合作为“通用”催化剂,协同催化聚烯烃废料碳化合成碳纳米管及其在超级电容器中的应用。

Nanosized carbon black combined with Ni2O3 as "universal" catalysts for synergistically catalyzing carbonization of polyolefin wastes to synthesize carbon nanotubes and application for supercapacitors.

机构信息

State Key Laboratory of Polymer Physics and Chemistry, Changchun Institute of Applied Chemistry , Changchun, Jilin 130022, China.

出版信息

Environ Sci Technol. 2014 Apr 1;48(7):4048-55. doi: 10.1021/es404646e. Epub 2014 Mar 18.

Abstract

The catalytic carbonization of polyolefin materials to synthesize carbon nanotubes (CNTs) is a promising strategy for the processing and recycling of plastic wastes, but this approach is generally limited due to the selectivity of catalysts and the difficulties in separating the polyolefin mixture. In this study, the influence of nanosized carbon black (CB) and Ni2O3 as a novel combined catalyst system on catalyzing carbonization of polypropylene (PP), polyethylene (PE), polystyrene (PS) and their blends was investigated. We showed that this combination was efficient to promote the carbonization of these polymers to produce CNTs with high yields and of good quality. Catalytic pyrolysis and model carbonization experiments indicated that the carbonization mechanism was attributed to the synergistic effect of the combined catalysts rendered by CB and Ni2O3: CB catalyzed the degradation of PP, PE, and PS to selectively produce more aromatic compounds, which were subsequently dehydrogenated and reassembled into CNTs via the catalytic action of CB together with Ni particles. Moreover, the performance of the synthesized CNTs as the electrode of supercapacitor was investigated. The supercapacitor displayed a high specific capacitance as compared to supercapacitors using commercial CNTs and CB. This difference was attributed to the relatively larger specific surface areas of our synthetic CNTs and their more oxygen-containing groups.

摘要

将聚烯烃材料催化碳化以合成碳纳米管(CNT)是一种有前途的塑料废物加工和回收策略,但由于催化剂的选择性和分离聚烯烃混合物的困难,这种方法通常受到限制。在这项研究中,研究了纳米级炭黑(CB)和 Ni2O3 作为新型组合催化剂体系对催化聚丙稀(PP)、聚乙烯(PE)、聚苯乙烯(PS)及其共混物碳化的影响。我们表明,这种组合能够有效地促进这些聚合物的碳化,以高产率和高质量生产 CNT。催化热解和模型碳化实验表明,碳化机制归因于 CB 和 Ni2O3 组合催化剂的协同作用:CB 催化 PP、PE 和 PS 的降解,选择性地产生更多的芳烃化合物,这些芳烃化合物通过 CB 与 Ni 颗粒的协同催化作用脱氢并重新组装成 CNT。此外,还研究了合成 CNT 作为超级电容器电极的性能。与使用商业 CNT 和 CB 的超级电容器相比,超级电容器具有更高的比电容。这种差异归因于我们合成的 CNT 具有相对较大的比表面积和更多的含氧基团。

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