李世杰, 王明涌, 宋维力, 左海滨, 焦树强. 熔盐电化学石墨化研究进展及展望[J]. 工程科学学报, 2022, 44(4): 546-560. DOI: 10.13374/j.issn2095-9389.2021.10.20.002
引用本文: 李世杰, 王明涌, 宋维力, 左海滨, 焦树强. 熔盐电化学石墨化研究进展及展望[J]. 工程科学学报, 2022, 44(4): 546-560. DOI: 10.13374/j.issn2095-9389.2021.10.20.002
LI Shi-jie, WANG Ming-yong, SONG Wei-li, ZUO Hai-bin, JIAO Shu-qiang. Electrochemical graphitization in the molten salts: Progress and prospects[J]. Chinese Journal of Engineering, 2022, 44(4): 546-560. DOI: 10.13374/j.issn2095-9389.2021.10.20.002
Citation: LI Shi-jie, WANG Ming-yong, SONG Wei-li, ZUO Hai-bin, JIAO Shu-qiang. Electrochemical graphitization in the molten salts: Progress and prospects[J]. Chinese Journal of Engineering, 2022, 44(4): 546-560. DOI: 10.13374/j.issn2095-9389.2021.10.20.002

熔盐电化学石墨化研究进展及展望

Electrochemical graphitization in the molten salts: Progress and prospects

  • 摘要: 近年来,提出了一种高效、环境友好的熔盐电化学转化方法,可将碳污染物直接转化为高附加值的石墨化产物。本文综述了熔盐电化学石墨化的工艺流程、产物的结构特征与转化机理。详细介绍了碳纳米材料在锂离子电池和铝离子电池等二次电池中的应用前景,突出了转化和利用丰富的二次碳资源实现高附加值应用的高效策略。最后,对开发熔盐电化学石墨化与规模化低能耗电解技术、构建先进高温熔盐电化学原位表征技术与定量化分析方法、深入研究电化学石墨化微观转化机理、推动石墨化产品的工程化应用进行了分析与展望。

     

    Abstract: In 2020, the Chinese government proposed the goals of “peaking carbon dioxide emissions” in 2030 and reaching “carbon neutrality” in 2060, with the expectation of enhancing the optimization of industrial structure and energy structures as well as promoting the development of control technologies and new energy technologies for pollution prevention. Carbon emissions lead to global warming, glacier melting, sea level rising, and other unexpected climate changes. It is highly significant to develop sustainable technologies for treating or converting carbon dioxide and low value-added solid carbon wastes and other carbon pollutants to achieve solid-state valuable carbon products. Carbon pollutants are also regarded as secondary carbon resources, which provide sufficient raw materials for developing carbon materials. Graphitization alters the chemical structure of carbonaceous materials. However, there are still some critical issues in the traditional graphitization processes, such as high processing temperature, insufficient graphitization, and emission of greenhouse gas. In recent years, an efficient and environmentally friendly method for electrochemical graphitization in molten salts has been established, which can be used to directly convert carbon pollutants into high graphitized products. In this review, there are three main topics: (1) process flow, (2) structure characteristics, (3) conversion mechanism of electrochemical graphitization. The use of carbon nanomaterials in secondary batteries such as lithium-ion batteries and aluminum-ion batteries has been discussed for a potential application. As a result, the efficient strategies of transforming and utilizing abundant secondary carbon resources to achieve the applications have also been analyzed. Finally, the ultimate goals for bridging the gap between molten salt electrochemical graphitization and engineering of graphitized products have been identified. Further efforts should be made to develop large-scale electrolytic technology with low energy consumption, build advanced in-situ characterization technology and quantitative analysis method for high-temperature molten salt electrochemistry, and understand the mechanism of electrochemical graphitization at the microscale.

     

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