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通过等离子体化学功能化来修饰石墨烯的表面能,以调节金属界面处的热和电输运。

Modifying Surface Energy of Graphene via Plasma-Based Chemical Functionalization to Tune Thermal and Electrical Transport at Metal Interfaces.

机构信息

†Department of Mechanical and Aerospace Engineering, University of Virginia, Charlottesville, Virginia 22904, United States.

出版信息

Nano Lett. 2015 Aug 12;15(8):4876-82. doi: 10.1021/acs.nanolett.5b00381. Epub 2015 Jul 1.

Abstract

The high mobility exhibited by both supported and suspended graphene, as well as its large in-plane thermal conductivity, has generated much excitement across a variety of applications. As exciting as these properties are, one of the principal issues inhibiting the development of graphene technologies pertains to difficulties in engineering high-quality metal contacts on graphene. As device dimensions decrease, the thermal and electrical resistance at the metal/graphene interface plays a dominant role in degrading overall performance. Here we demonstrate the use of a low energy, electron-beam plasma to functionalize graphene with oxygen, fluorine, and nitrogen groups, as a method to tune the thermal and electrical transport properties across gold-single layer graphene (Au/SLG) interfaces. We find that while oxygen and nitrogen groups improve the thermal boundary conductance (hK) at the interface, their presence impairs electrical transport leading to increased contact resistance (ρC). Conversely, functionalization with fluorine has no impact on hK, yet ρC decreases with increasing coverage densities. These findings indicate exciting possibilities using plasma-based chemical functionalization to tailor the thermal and electrical transport properties of metal/2D material contacts.

摘要

无论是支持的还是悬浮的石墨烯都表现出了很高的迁移率,以及其较大的面内热导率,这在各种应用中都引起了极大的关注。尽管这些特性令人兴奋,但阻碍石墨烯技术发展的一个主要问题是难以在石墨烯上构建高质量的金属接触。随着器件尺寸的缩小,金属/石墨烯界面处的热阻和电阻在降低整体性能方面起着主导作用。在这里,我们展示了使用低能量电子束等离子体对石墨烯进行含氧、含氟和含氮基团的功能化,作为一种调节金-单层石墨烯(Au/SLG)界面热和电输运性质的方法。我们发现,虽然氧和氮基团提高了界面处的热边界导纳(hK),但它们的存在会损害电传输,导致接触电阻(ρC)增加。相反,用氟进行功能化对 hK 没有影响,但 ρC 随覆盖率密度的增加而降低。这些发现表明,使用基于等离子体的化学功能化来调整金属/二维材料接触的热和电输运性质具有令人兴奋的可能性。

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