Johnson Tyler, Wang Keliang, Fan Qi Hua, Lee Andre
Department of Chemical Engineering and Materials Science, Michigan State University, East Lansing, MI, 48824, USA.
Fraunhofer USA Center Midwest, East Lansing, MI, 48824, USA.
Discov Nano. 2023 Nov 24;18(1):144. doi: 10.1186/s11671-023-03929-y.
Atmospheric plasma processing, which combines the efficacy of chemical processes and the safety of physical processes, has been used to modify the surface characteristics of graphite-based materials. In this work, two distinct plasma source gases, CF and O, with the addition of a rotary reactor were used. The effectiveness of modifying the basal plane of intercalated graphite nanoplatelets (GnP) was investigated with various analytical techniques and the visual observation of the dispersion of these plasma-treated GnP in solvents was also reported. It is shown that this low-temperature plasma processing technique can be used to successfully modify the GnP surface without significantly changing the intrinsic structure of the GnP, which is desirable in many applications. With the CF plasma treatment, the immersion characteristics in solvents can be tuned and the functional groups present on the surface can be tailored to produce desired bonding environments. This surface chemistry tunability will provide the needed functionalities in creating graphene-containing composite materials.
大气等离子体处理结合了化学过程的功效和物理过程的安全性,已被用于改变石墨基材料的表面特性。在这项工作中,使用了两种不同的等离子体源气体CF和O,并添加了旋转反应器。采用各种分析技术研究了修饰插层石墨纳米片(GnP)基面的有效性,还报告了这些经等离子体处理的GnP在溶剂中分散情况的视觉观察结果。结果表明,这种低温等离子体处理技术可用于成功修饰GnP表面,而不会显著改变GnP的固有结构,这在许多应用中是很理想的。通过CF等离子体处理,可以调节在溶剂中的浸渍特性,并可以定制表面存在的官能团以产生所需的键合环境。这种表面化学可调性将为制备含石墨烯的复合材料提供所需的功能。