Graduate Institute of Electronics Engineering, National Taiwan University, Taipei 10617, Taiwan, ROC.
Nanotechnology. 2019 Jun 14;30(24):245709. doi: 10.1088/1361-6528/ab0511. Epub 2019 Feb 7.
In this work, we study surface functionalization effects of artificially stacked graphene bilayers (ASGBs) to control its wetting properties via low-damage plasma. The ASGBs were prepared on a SiO/Si substrate by stacking two monolayer graphene, which was grown by chemical vapor deposition. As a result, the low-damage plasma functionalization of ASGBs could hold both the key characteristics of surface functionalization and electrical transport properties of graphene sheets. To characterize ASGBs, Raman and x-ray photoelectron spectroscopy (XPS) were used to determine the degree of defect formation and functionalization. Meanwhile, the degree of the wettability of the ASGBs surface was determined by optical contact angle (CA) measurements. Based on experimental results, the compositional ratio of C-OH + COOH was found to increase 67% based on the analysis of XPS spectra after low-damage plasma treatment. This treatment effect can also be found with 75.3% decrease in the CA of water droplet on graphene. In addition, we found that the ratio of 2D/(D + G') in Raman spectra shows strong correlation to the measured CA; it can be a reliable indicator of ASGBs surface wettability modification. This work showed that we obtained a higher degree functionalization of ASGBs without degrading the under-layer structure of ASGBs due to the moderate low-damage plasma treatment. The presented process technique of controllable wettability through low-damage plasma treatment can be employed for potential application in graphene-based sensors/devices.
在这项工作中,我们通过低损伤等离子体研究了人工堆叠石墨烯双层(ASGB)的表面功能化效应,以控制其润湿性。ASGB 是通过堆叠两层由化学气相沉积法生长的单层石墨烯在 SiO2/Si 衬底上制备的。结果表明,ASGB 的低损伤等离子体功能化既可以保持表面功能化的关键特性,又可以保持石墨烯片的电输运特性。为了对 ASGB 进行表征,使用拉曼和 X 射线光电子能谱(XPS)来确定缺陷形成和功能化的程度。同时,通过光学接触角(CA)测量来确定 ASGB 表面润湿性的程度。基于实验结果,发现 XPS 光谱分析表明,经低损伤等离子体处理后,C-OH+COOH 的组成比增加了 67%。这种处理效果也可以通过石墨烯上水滴 CA 降低 75.3%来发现。此外,我们发现拉曼光谱中 2D/(D+G')的比值与测量的 CA 具有很强的相关性,它可以作为 ASGB 表面润湿性修饰的可靠指标。这项工作表明,我们通过适度的低损伤等离子体处理获得了更高程度的 ASGB 功能化,而不会降解 ASGB 的底层结构。通过低损伤等离子体处理实现可控润湿性的提出的工艺技术可以应用于基于石墨烯的传感器/器件中。