Huh Jae-Hoon, Kim Seung Hyun, Chu Jae Hwan, Kim Sung Youb, Kim Ji Hyun, Kwon Soon-Yong
School of Materials Science and Engineering, Ulsan National Institute of Science and Technology (UNIST), Ulsan 689-798, South Korea.
Nanoscale. 2014 Apr 21;6(8):4379-86. doi: 10.1039/c3nr05997a.
We show that acetone-derived graphene coating can effectively enhance the corrosion efficiency of copper (Cu) in a seawater environment (0.5-0.6 M (∼3.0-3.5%) sodium chloride). By applying a drop of acetone (∼20 μl cm(-2)) on Cu surfaces, rapid thermal annealing allows the facile and rapid synthesis of graphene films on Cu surfaces with a monolayer coverage of almost close to ∼100%. Under optimal growth conditions, acetone-derived graphene is found to have a relatively high crystallinity, comparable to common graphene grown by chemical vapor deposition. The resulting graphene-coated Cu surface exhibits 37.5 times higher corrosion resistance as compared to that of mechanically polished Cu. Further, investigation on the role of graphene coating on Cu surfaces suggests that the outstanding corrosion inhibition efficiency (IE) of 97.4% is obtained by protecting the underlying Cu against the penetration of both dissolved oxygen and chlorine ions, thanks to the closely spaced atomic structure of the graphene sheets. The increase of graphene coating thickness results in the enhancement of the overall corrosion IE up to ∼99%, which can be attributed to the effective blocking of the ionic diffusion process via grain boundaries. Overall, our results suggest that the acetone-derived graphene film can effectively serve as a corrosion-inhibiting coating in the seawater level and that it may have a promising role to play for potential offshore coating.
我们表明,丙酮衍生的石墨烯涂层能够有效提高铜(Cu)在海水环境(0.5 - 0.6 M(约3.0 - 3.5%)氯化钠)中的腐蚀效率。通过在铜表面滴加一滴丙酮(约20 μl cm⁻²),快速热退火能够在铜表面轻松快速地合成石墨烯薄膜,其单层覆盖率几乎接近100%。在最佳生长条件下,发现丙酮衍生的石墨烯具有相对较高的结晶度,与通过化学气相沉积生长的普通石墨烯相当。所得的石墨烯涂层铜表面与机械抛光的铜相比,耐腐蚀性提高了37.5倍。此外,对铜表面石墨烯涂层作用的研究表明,由于石墨烯片层紧密排列的原子结构,通过保护下层铜免受溶解氧和氯离子的渗透,可获得高达97.4%的出色缓蚀效率(IE)。石墨烯涂层厚度的增加导致整体腐蚀IE提高至约99%,这可归因于通过晶界有效阻断了离子扩散过程。总体而言,我们的结果表明,丙酮衍生的石墨烯薄膜能够有效地作为海水环境中的缓蚀涂层,并且它在潜在的海上涂层应用中可能具有广阔的前景。