Carbon Conversion Using High Voltage Plasma Method Based on Mangrove Wood Charcoal

R. Aldi, Feranita Feranita, F. Murdiya, Ery Safrianti, L. O. Sari
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Abstract

This study investigates the conversion of mangrove wood charcoal into graphene using high voltage plasma technology through arc discharge. The experiment involves heating carbon with high voltage plasma generated from rod and plate electrodes. The variables examined are the electrode distance and carbon treatment time. The results demonstrate the successful conversion of mangrove wood charcoal into graphene. The generated plasma is influenced by the electrode distance, with a 1 cm gap producing stronger bluish-orange plasma. Varying the treatment time also affects the graphene yield, with a 3-minute treatment generating more graphene compared to 2 minutes, and 2 minutes yielding more graphene than 1 minute. XRD analysis reveals characteristic peak shifts indicative of graphene presence. SEM analysis confirms the graphene structure with porous features and sub-micrometer sizes. SEM images and diameter data further validate the successful conversion of carbon into graphene. These findings provide a foundation for the development of high voltage plasma-based production of graphene from mangrove wood charcoal. The utilization of a 10kV Neon Power Supply transformer enables the generation of high voltage plasma for the carbon-to-graphene conversion process. The electrode distance in the transformer plays a crucial role, as greater distances result in higher voltages, while shorter distances lead to lower voltages. This research significantly contributes to expanding the knowledge and application of graphene in various scientific and engineering fields. Moreover, the understanding of how electrode distance affects the generated voltage using a Neon Power Supply transformer is an important finding for optimizing the performance of this type of transformer.
基于红树林木炭的高压等离子体法碳转化
本研究利用高压等离子体技术通过电弧放电将红树林木炭转化为石墨烯。该实验包括用棒电极和板电极产生的高压等离子体加热碳。检查的变量是电极距离和碳处理时间。结果表明,红树林木炭成功转化为石墨烯。产生的等离子体受电极距离的影响,1厘米的间隙产生更强的蓝橙色等离子体。不同的处理时间也会影响石墨烯的产量,3分钟的处理比2分钟的处理产生更多的石墨烯,2分钟的处理比1分钟产生更多的石墨烯。XRD分析显示石墨烯存在的特征峰移。扫描电镜分析证实石墨烯结构具有多孔特征和亚微米尺寸。SEM图像和直径数据进一步验证了碳成功转化为石墨烯。这些发现为利用红树林木炭生产石墨烯的高压等离子体技术的发展奠定了基础。利用10kV霓虹电源变压器可以产生用于碳到石墨烯转换过程的高压等离子体。变压器中的电极距离起着至关重要的作用,因为距离越远电压越高,距离越短电压越低。这项研究对扩大石墨烯在各个科学和工程领域的知识和应用具有重要意义。此外,了解电极距离如何影响使用霓虹灯电源变压器产生的电压是优化这类变压器性能的重要发现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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