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六方氮化硼/石墨烯/氮化硼夹层结构中石墨烯的环境敏感性可忽略不计。

Negligible environmental sensitivity of graphene in a hexagonal boron nitride/graphene/h-BN sandwich structure.

机构信息

Department of Mechanical Engineering, Columbia University, New York, New York 10027, USA.

出版信息

ACS Nano. 2012 Oct 23;6(10):9314-9. doi: 10.1021/nn304004s. Epub 2012 Oct 1.

Abstract

Using Raman spectroscopy, we study the environmental sensitivity of mechanically exfoliated and electrically floating single-layer graphene transferred onto a hexagonal boron nitride (h-BN) substrate, in comparison with graphene deposited on a SiO(2) substrate. In order to understand and isolate the substrate effect on graphene electrical properties, we model and correct for Raman optical interference in the substrates. As-deposited and unannealed graphene shows a large I(2D)/I(G) ratio on both substrates, indicating extremely high quality, close to that of graphene suspended in vacuum. Thermal annealing strongly activates subsequent environmental sensitivity on the SiO(2) substrate; such activation is reduced but not eliminated on the h-BN substrate. In contrast, in a h-BN/graphene/h-BN sandwich structure, with graphene protected on both sides, graphene remains pristine despite thermal processing. Raman data provide a deeper understanding of the previously observed improved graphene electrical conductivity on h-BN substrates. In the sandwich structure, the graphene 2D Raman feature has a higher frequency and narrower line width than in pristine suspended graphene, implying that the local h-BN environment modestly yet measurably changes graphene electron and phonon dispersions.

摘要

利用拉曼光谱,我们研究了转移到六方氮化硼(h-BN)衬底上的机械剥离和电浮置单层石墨烯的环境敏感性,并与沉积在 SiO2 衬底上的石墨烯进行了比较。为了理解和隔离衬底对石墨烯电性能的影响,我们对衬底中的拉曼光学干涉进行了建模和修正。在两种衬底上,未经退火的石墨烯的 I(2D)/I(G) 比值都很大,表明其质量极高,接近真空悬浮石墨烯的质量。在 SiO2 衬底上,退火会强烈激活后续的环境敏感性;而在 h-BN 衬底上,这种激活虽然被减弱,但并未消除。相比之下,在 h-BN/石墨烯/h-BN 三明治结构中,由于石墨烯两面都受到保护,因此尽管经过了热处理,石墨烯仍保持原始状态。拉曼数据提供了对之前观察到的 h-BN 衬底上石墨烯电导率提高的更深入理解。在三明治结构中,石墨烯的 2D 拉曼特征的频率更高,线宽更窄,这意味着局部的 h-BN 环境适度但可测量地改变了石墨烯的电子和声子色散。

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