4.8 Article

Tailoring Surface Properties via Functionalized Hydrofluorinated Graphene Compounds

期刊

ADVANCED MATERIALS
卷 31, 期 39, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.201903424

关键词

2D compounds; fluorination; graphene; hydrogenation; patterned chemical functionalization

资金

  1. NSF-MRSEC [DMR-1720633]
  2. NSF-CAREER award [CMMI-1846732]
  3. Global Research and Development Center Program [2018K1A4A3A01064272]
  4. Basic Science Research Program [2017R1A2B2010123]
  5. National Research Foundation (NRF) of Korea [2010-0020207]
  6. Creative Materials Discovery Program
  7. NRF of Korea [2016M3A7B4910940, 2018M3D1A1058794, 2019K1A3A1A25000267]
  8. Elemental Strategy Initiative by the MEXT, Japan
  9. CREST, JST [JPMJCR15F3]
  10. Basic Science Research Program
  11. National Research Foundation of Korea [2016M3A7B4910940, 2018M3D1A1058794, 2010-0020207] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

A new compound material of 2D hydrofluorinated graphene (HFG) is demonstrated whose relative hydrogen/fluorine concentrations can be tailored between the extremes of either hydrogenated graphene (HG) and fluorinated graphene (FG). The material is fabricated through subsequent exposures to indirect hydrogen plasma and xenon difluoride (XeF2). Controlling the relative concentration in the HFG compound enables tailoring of material properties between the extremes offered by the constituent materials and in-plane patterning produces micrometer-scale regions with different surface properties. The utility of the technique to tailor the surface wettability, surface friction, and electrical conductivity is demonstrated. HFG compounds display wettability between the extremes of pure FG with contact angle of 95 degrees +/- 5 degrees and pure HG with contact angle of 42 degrees +/- 2 degrees. Similarly, the HFG surface friction may be tailored between the two extremes. Finally, the HFG electrical conductivity tunes through five orders of magnitude when transitioning from FG to HG. When combined with simulation, the electrical measurements reveal the mechanism producing the compound to be a dynamic process of adatom desorption and replacement. This study opens a new class of 2D compound materials and innovative chemical patterning with applications for atomically thin 2D circuits consisting of chemically/electrically modulated regions.

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