Quick identification of ABC trilayer graphene at nanoscale resolution via a near-field optical route

Peiyue Shen, Xianliang Zhou, Jiajun Chen, Aolin Deng, B. Lyu, Zhichun Zhang, Shuo Lou, Saiqun Ma, B. Wei, Zhiwen Shi
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Abstract

ABC-stacked trilayer graphene has exhibited a variety of correlated phenomena owing to its relatively flat bands and gate-tunable bandgap. However, convenient methods are still lacking for identifying ABC graphene with nanometer-scale resolution. Here we demonstrate that the scanning near-field optical microscope working in ambient conditions can provide quick recognition of ABC trilayer graphene with no ambiguity and excellent resolution (∼20 nm). The recognition is based on the difference in their near-field infrared (IR) responses between the ABA and ABC trilayers. We show that in most frequencies, the response of the ABC trilayer is weaker than the ABA trilayer. However, near the graphene phonon frequency (∼1585 cm−1), ABC’s response increases dramatically when gated and exhibits a narrow and sharp Fano-shape resonant line, whereas the ABA trilayer is largely featherless. Consequently, the IR contrast between ABC and ABA becomes reversed and can even be striking (ABC/ABA ∼ 3) near the graphene phonon frequency. The observed near-field IR features can serve as a golden rule to quickly distinguish ABA and ABC trilayers with no ambiguity, which could largely advance the exploration of correlation physics in ABC-stacked trilayer graphene.
基于近场光学路径的ABC三层石墨烯纳米级分辨率快速识别
abc堆叠的三层石墨烯由于其相对平坦的能带和栅极可调的带隙而表现出多种相关现象。然而,目前仍缺乏方便的方法来识别ABC石墨烯的纳米级分辨率。在这里,我们证明了在环境条件下工作的扫描近场光学显微镜可以提供ABC三层石墨烯的快速识别,没有模糊和出色的分辨率(~ 20 nm)。这种识别是基于ABA和ABC三层之间近场红外(IR)响应的差异。我们发现,在大多数频率下,ABC三层的响应弱于ABA三层。然而,在石墨烯声子频率附近(~ 1585 cm−1),当门控时,ABC的响应急剧增加,并表现出窄而尖锐的法诺形状谐振线,而ABA三层基本上没有羽毛。因此,在石墨烯声子频率附近,ABC和ABA之间的红外对比变得相反,甚至可以达到惊人的(ABC/ABA ~ 3)。观察到的近场红外特征可以作为快速区分ABA和ABC三层石墨烯的黄金法则,这可以在很大程度上推进ABC堆叠三层石墨烯的相关物理探索。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.40
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