论文标题
石墨烯的激光去角质
Laser Exfoliation of Graphene from Graphite
论文作者
论文摘要
将石墨烯与化学试剂减少的合成对于制造规模和控制其结构和特性至关重要。在本文中,我们报告了使用激光脉冲从石墨剥落的石墨烯剥落的一种新型的无化学物质机制。我们的实验设置由用ND:波长532 nm和10 ns脉冲宽度的YAG激光照射的石墨板组成。结果表明,通过电子显微镜和拉曼光谱的构象形态形成石墨烯层。基于实验结果,我们在分子动力学框架内开发了一个模拟,该模拟将激光诱导的电磁能提供给石墨板中的原子。我们研究了不同激光通量对石墨烯剥落过程的影响。层间相互作用能量和层间距离的变化是可能形成的石墨烯层形成的确认度量。模拟结果证实了单层石墨烯片的剥落,用于激光功率,范围从100x10^(-14)到2000x10^(-14)J/NM2。随着激光通量从2000x10^(-14)增加到4000x10^(-14)J/NM2,通过层 - 层剥落的层质量量增加了石墨烯产量。连续石墨烯层之间的桥接键动力学控制了第二层去角质的可能性。实验和仿真观察对于在工业和商业应用中大规模生产无化学石墨烯是有用的,并且有希望。
Synthesis of graphene with reduced use of chemical reagents is essential for manufacturing scale-up and to control its structure and properties. In this paper, we report on a novel chemical-free mechanism of graphene exfoliation from graphite using laser impulse. Our experimental setup consists of a graphite slab irradiated with an Nd:YAG laser of wavelength 532 nm and 10 ns pulse width. The results show the formation of graphene layers with conformational morphology from electron microscopy and Raman spectra. Based on the experimental results, we develop a simulation set up within the framework of the molecular dynamics that supplies the laser-induced electromagnetic energies to atoms in the graphite slab. We investigate the influence of different laser fluence on the exfoliation process of graphene. The variations in inter-layer interaction energy and inter-layer distance are the confirmative measures for the possible graphene layer formation. The simulation results confirm the exfoliation of a single layer graphene sheet for the laser power ranging from 100x10^(-14) to 2000x10^(-14) J/nm2. With an increase of laser fluence from 2000x10^(-14) to 4000x10^(-14) J/nm2, there is an increase in the graphene yield via the layer-after-layer exfoliation. The bridging bond dynamics between the successive graphene layers govern the possibility of second-layer exfoliation. The experimental and simulation observations are useful and promising for producing chemical-free graphene on a large scale for industrial and commercial applications.