熔盐辅助镁热还原直接制备少层石墨烯

IF 2.5 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Jie Liu, Binfeng Pan, Zhimin Zhang, Xuchen Lu
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引用次数: 0

摘要

石墨烯材料,如涡轮石墨烯,在从电子设备到航空航天技术的一系列应用中展现出非凡的前景。开发一种不仅经济高效,而且环境可持续的制造方法至关重要。在本研究中,提出了熔融盐辅助镁热还原(MSAMR)方法来合成少层涡层石墨烯。K2CO3作为石墨化的碳源和催化剂,促进了石墨烯结构的形成,而原位生成的MgO纳米颗粒对石墨烯的生长具有限制和模板效应。所使用的熔盐有效地防止了石墨烯片的聚集和Bernal堆积,确保了少层和涡轮结构。K2CO3、原位生成的MgO和熔盐的协同作用保证了在相对较低的温度下形成少层涡层石墨烯,具有4-8层的堆叠层,中孔为主的微观结构,石墨化程度高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Direct fabrication of few-layer graphene via molten salt-assisted magnesiothermic reduction

Graphene materials like turbostratic graphene exhibit remarkable promise for an array of applications, spanning from electronic devices to aerospace technologies. It is essential to develop a fabrication method that is not only economical and efficient, but also environmentally sustainable. In this study, the molten salt-assisted magnesiothermic reduction (MSAMR) method is proposed for the synthesis of few-layer turbostratic graphene. K2CO3 serves as both the carbon source and the catalyst for graphitization, facilitating the formation of the graphene structure, while in-situ generated MgO nanoparticles exert confinement and templating effects on the growth of graphene. The molten salts used effectively prevent the aggregation and the Bernal stacking of graphene sheets, ensuring the few-layer and turbostratic structure. The synergistic effects of K2CO3, in-situ generated MgO, and molten salts guarantee the formation of few-layer turbostratic graphene at a relatively low temperature, characterized with 4–8 stacking layers, a mesopore-dominated microstructure, and a high degree of graphitization.

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来源期刊
Frontiers of Materials Science
Frontiers of Materials Science MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
4.20
自引率
3.70%
发文量
515
期刊介绍: Frontiers of Materials Science is a peer-reviewed international journal that publishes high quality reviews/mini-reviews, full-length research papers, and short Communications recording the latest pioneering studies on all aspects of materials science. It aims at providing a forum to promote communication and exchange between scientists in the worldwide materials science community. The subjects are seen from international and interdisciplinary perspectives covering areas including (but not limited to): Biomaterials including biomimetics and biomineralization; Nano materials; Polymers and composites; New metallic materials; Advanced ceramics; Materials modeling and computation; Frontier materials synthesis and characterization; Novel methods for materials manufacturing; Materials performance; Materials applications in energy, information and biotechnology.
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