Department of Electrical Engineering and Computer Sciences and ‡Department of Physics, Massachusetts Institute of Technology , 77 Mass Avenue, Cambridge, Massachusetts 02139, United States .
ACS Nano. 2014 Jun 24;8(6):6491-9. doi: 10.1021/nn5015177. Epub 2014 Jun 16.
In this work, we investigated the growth mechanisms of bilayer graphene on the outside surface of Cu enclosures at low pressures. We observed that the asymmetric growth environment of a Cu enclosure can yield a much higher (up to 100%) bilayer coverage on the outside surface as compared to the bilayer growth on a flat Cu foil, where both sides are exposed to the same growth environment. By simultaneously examining the graphene films grown on both the outside and inside surfaces of the Cu enclosure, we find that carbon can diffuse from the inside surface to the outside via exposed copper regions on the inside surface. The kinetics of this process are examined by coupling the asymmetric growth between the two surfaces through a carbon diffusion model. Finally, using these results, we show that the coverage of bilayer graphene can be tuned simply by changing the thickness of the Cu foil, further confirming our model of carbon delivery through the Cu foil.
在这项工作中,我们研究了在低压下 Cu 容器外表面上双层石墨烯的生长机制。我们观察到,与在暴露于相同生长环境的双面 Cu 箔上生长双层石墨烯相比,Cu 容器的非对称生长环境可以在外表面上产生高得多的(高达 100%)双层覆盖率。通过同时检查在 Cu 容器的内外表面上生长的石墨烯膜,我们发现碳可以通过内表面上暴露的铜区域从内表面扩散到外表面。通过通过碳扩散模型将两个表面之间的非对称生长耦合,研究了这个过程的动力学。最后,使用这些结果,我们表明通过简单地改变 Cu 箔的厚度可以调节双层石墨烯的覆盖率,进一步证实了我们通过 Cu 箔输送碳的模型。