State Key Laboratory of Quantum Optics and Quantum Optics Devices, Institute of Laser Spectroscopy, Collaborative Innovation Center of Extreme Optics , Shanxi University , Taiyuan , Shanxi 030006 , People's Republic of China.
Faculty of Technology, Natural Sciences and Maritime Sciences, Department of Microsystems , University of Southeast Norway , Borre N-3184 , Norway.
ACS Appl Mater Interfaces. 2019 Mar 13;11(10):10237-10243. doi: 10.1021/acsami.9b00896. Epub 2019 Mar 4.
Vertically oriented graphene (VG) with three-dimensional architecture has been proved to exhibit unique properties, and its particular morphology has been realized by researchers to be crucial for its performance in practical applications. In this study, we investigated the morphology evolution of VG films synthesized by the plasma-enhanced chemical vapor deposition process, including porous graphene film, graphene wall, and graphene forest. This study reveals that the morphology of VG is controlled by a combination of the deposition and etching effects and tailored by the growth conditions, such as plasma source power and growth time and temperature. The plasma source power relates to the number of branches of VG, and the growth temperature relates to the thickness of each VG flake, whereas the growth time determines the height of VG. Finally, the electrochemical properties of VG films along with morphology evolution are investigated by fabricating as VG-based supercapacitor electrodes.
垂直取向的石墨烯(VG)具有三维结构,已被证明具有独特的性质,其特殊的形态被研究人员证实对其在实际应用中的性能至关重要。在这项研究中,我们研究了通过等离子体增强化学气相沉积工艺合成的 VG 薄膜的形态演变,包括多孔石墨烯薄膜、石墨烯壁和石墨烯林。本研究表明,VG 的形态由沉积和蚀刻效应的结合控制,并通过生长条件(如等离子体源功率、生长时间和温度)进行调整。等离子体源功率与 VG 的分支数有关,生长温度与每个 VG 薄片的厚度有关,而生长时间决定了 VG 的高度。最后,通过制备基于 VG 的超级电容器电极,研究了 VG 薄膜的电化学性能及其形态演变。