Wang Rui, Hong Tu, Xu Ya-Qiong
Department of Physics and Astronomy and ‡Department of Electrical Engineering and Computer Science, Vanderbilt University , Nashville, Tennessee 37235, United States.
ACS Appl Mater Interfaces. 2015 Mar 11;7(9):5233-8. doi: 10.1021/am5082843. Epub 2015 Feb 26.
Graphene and single-walled carbon nanotubes (SWNTs) have shown superior potential in electronics and optoelectronics because of their excellent thermal, mechanical, electronic, and optical properties. Here, a simple method is developed to synthesize ultrathin SWNT-graphene films through chemical vapor deposition. These novel two-dimensional hybrids show enhanced mechanical strength that allows them to float on water without polymer supporting layers. Characterizations by Raman spectroscopy and transmission electron microscopy indicate that SWNTs can interlace as a concrete backbone for the subsequent growth of monolayer graphene. Optical and electrical transport measurements further show that SWNT-graphene hybrids inherit high optical transparency and superior electrical conductivity from monolayer graphene. We also explore the local optoelectronic properties of SWNT-graphene hybrids through spatially resolved photocurrent microscopy and find that the interactions between SWNTs and graphene can induce a strong photocurrent response in the areas where SWNTs link different graphene domains together. These fundamental studies may open a door for engineering optoelectronic properties of SWNT-graphene hybrids by controlling the morphologies of the SWNT frames.
石墨烯和单壁碳纳米管(SWNTs)因其优异的热、机械、电子和光学性能,在电子学和光电子学领域展现出卓越的潜力。在此,我们开发了一种简单的方法,通过化学气相沉积来合成超薄的SWNT-石墨烯薄膜。这些新型二维杂化材料显示出增强的机械强度,使其无需聚合物支撑层就能漂浮在水面上。拉曼光谱和透射电子显微镜表征表明,SWNTs可以交织形成一个坚实的骨架,用于随后单层石墨烯的生长。光学和电输运测量进一步表明,SWNT-石墨烯杂化材料继承了单层石墨烯的高光学透明度和优异的导电性。我们还通过空间分辨光电流显微镜探索了SWNT-石墨烯杂化材料的局部光电特性,发现SWNTs与石墨烯之间的相互作用可以在SWNTs将不同石墨烯域连接在一起的区域诱导出强烈的光电流响应。这些基础研究可能为通过控制SWNT框架的形态来设计SWNT-石墨烯杂化材料的光电特性打开一扇门。