Unraveling the Water Impermeability Discrepancy in CVD-Grown Graphene

被引:17
|
作者
Kwak, Jinsung [1 ,2 ]
Kim, Se-Yang [1 ,2 ]
Jo, Yongsu [1 ,2 ]
Kim, Na Yeon [1 ,2 ]
Kim, Sung Youb [3 ]
Lee, Zonghoon [1 ,2 ]
Kwon, Soon-Yong [1 ,2 ]
机构
[1] UNIST, Sch Mat Sci & Engn, Ulsan 44919, South Korea
[2] UNIST, Low Dimens Carbon Mat Ctr, Ulsan 44919, South Korea
[3] UNIST, Sch Mech Aerosp & Nucl Engn, Ulsan 44919, South Korea
基金
新加坡国家研究基金会;
关键词
chemical vapor deposition; flexible barrier film; graphene wrinkles; site-selective passivation; water impermeability; CHEMICAL-VAPOR-DEPOSITION; CARBON NANOTUBES; MONOLAYER GRAPHENE; INTRINSIC DEFECTS; ADHESION ENERGY; FILMS; NANORIBBONS; PERMEATION; TRANSPORT; MEMBRANES;
D O I
10.1002/adma.201800022
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Graphene has recently attracted particular interest as a flexible barrier film preventing permeation of gases and moistures. However, it has been proved to be exceptionally challenging to develop large-scale graphene films with little oxygen and moisture permeation suitable for industrial uses, mainly due to the presence of nanometer-sized defects of obscure origins. Here, the origins of water permeable routes on graphene-coated Cu foils are investigated by observing the micrometer-sized rusts in the underlying Cu substrates, and a site-selective passivation method of the nanometer-sized routes is devised. It is revealed that nanometer-sized holes or cracks are primarily concentrated on graphene wrinkles rather than on other structural imperfections, resulting in severe degradation of its water impermeability. They are found to be predominantly induced by the delamination of graphene bound to Cu as a release of thermal stress during the cooling stage after graphene growth, especially at the intersection of the Cu step edges and wrinkles owing to their higher adhesion energy. Furthermore, the investigated routes are site-selectively passivated by an electron-beam-induced amorphous carbon layer, thus a substantial improvement in water impermeability is achieved. This approach is likely to be extended for offering novel barrier properties in flexible films based on graphene and on other atomic crystals.
引用
收藏
页数:8
相关论文
共 50 条
  • [1] Microwave Devices Based on CVD-grown Graphene
    Lu, Wei-Bing
    Chen, Hui
    Liu, Zhen-Guo
    Chen, Hao
    Zhang, An-Qi
    2019 INTERNATIONAL CONFERENCE ON MICROWAVE AND MILLIMETER WAVE TECHNOLOGY (ICMMT 2019), 2019,
  • [2] How good can CVD-grown monolayer graphene be?
    Chen, Bingyan
    Huang, Huixin
    Ma, Xiaomeng
    Huang, Le
    Zhang, Zhiyong
    Peng, Lian-Mao
    NANOSCALE, 2014, 6 (24) : 15255 - 15261
  • [3] Inhomogeneous strain and doping of transferred CVD-grown graphene
    Yu-Ting Niu
    Fang-Zhu Qing
    Xue-Song Li
    Bo Peng
    Rare Metals, 2022, 41 : 1727 - 1734
  • [4] Inhomogeneous strain and doping of transferred CVD-grown graphene
    Yu-Ting Niu
    Fang-Zhu Qing
    Xue-Song Li
    Bo Peng
    Rare Metals, 2022, 41 (05) : 1727 - 1734
  • [5] Intrinsic energy dissipation in CVD-grown graphene nanoresonators
    Qi, Zenan
    Park, Harold S.
    NANOSCALE, 2012, 4 (11) : 3460 - 3465
  • [6] Photochemical oxidation of CVD-grown single layer graphene
    Zhao, Shichao
    Surwade, Sumedh P.
    Li, Zhiting
    Liu, Haitao
    NANOTECHNOLOGY, 2012, 23 (35)
  • [7] Fractional quantum Hall effect in CVD-grown graphene
    Schmitz, M.
    Ouaj, T.
    Winter, Z.
    Rubi, K.
    Watanabe, K.
    Taniguchi, T.
    Zeitler, U.
    Beschoten, B.
    Stampfer, C.
    2D MATERIALS, 2020, 7 (04)
  • [8] Inhomogeneous strain and doping of transferred CVD-grown graphene
    Niu, Yu-Ting
    Qing, Fang-Zhu
    Li, Xue-Song
    Peng, Bo
    RARE METALS, 2022, 41 (05) : 1727 - 1734
  • [9] Fabrication and tribological properties of nanogrids on CVD-grown graphene
    Jiang, Yan
    Sun, Yu
    Song, Juan
    MICRON, 2017, 97 : 29 - 34
  • [10] Organic solar cells using CVD-grown graphene electrodes
    Kim, Hobeom
    Bae, Sang-Hoon
    Han, Tae-Hee
    Lim, Kyung-Geun
    Ahn, Jong-Hyun
    Lee, Tae-Woo
    NANOTECHNOLOGY, 2014, 25 (01)