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使用近场显微镜对四层石墨烯多型体进行中红外映射。

Mid-Infrared Mapping of Four-Layer Graphene Polytypes Using Near-Field Microscopy.

作者信息

Beitner Daniel, Amitay Shaked, Salleh Atri Simon, McEllistrim Andrew, Coen Tom, Fal'ko Vladimir I, Richter Shachar, Ben Shalom Moshe, Suchowski Haim

机构信息

Department of Materials Science and Engineering Faculty of Engineering, Tel Aviv University Ramat Aviv, Tel Aviv 69998, Israel.

University Centre for Nanoscience and Nanotechnology, Tel Aviv University Ramat Aviv, Tel Aviv 69998, Israel.

出版信息

Nano Lett. 2023 Dec 13;23(23):10758-10764. doi: 10.1021/acs.nanolett.3c02819. Epub 2023 Nov 26.

Abstract

The mid-infrared (MIR) spectral region attracts attention for accurate chemical analysis using photonic devices. Few-layer graphene (FLG) polytypes are promising platforms, due to their broad absorption in this range and gate-tunable optical properties. Among these polytypes, the noncentrosymmetric ABCB/ACAB structure is particularly interesting, due to its intrinsic bandgap (8.8 meV) and internal polarization. In this study, we utilize scattering-scanning near-field microscopy to measure the optical response of all three tetralayer graphene polytypes in the 8.5-11.5 μm range. We employ a finite dipole model to compare these results to the calculated optical conductivity for each polytype obtained from a tight-binding model. Our findings reveal a significant discrepancy in the MIR optical conductivity response of graphene between the different polytypes than what the tight-binding model suggests. This observation implies an increased potential for utilizing the distinct tetralayer polytypes in photonic devices operating within the MIR range for chemical sensing and infrared imaging.

摘要

中红外(MIR)光谱区域因使用光子器件进行精确化学分析而备受关注。少层石墨烯(FLG)多型体是很有前景的平台,因为它们在该范围内具有广泛的吸收以及栅极可调谐光学特性。在这些多型体中,非中心对称的ABCB/ACAB结构特别有趣,因为它具有固有带隙(8.8毫电子伏特)和内禀极化。在本研究中,我们利用散射扫描近场显微镜来测量所有三种四层石墨烯多型体在8.5 - 11.5微米范围内的光学响应。我们采用有限偶极子模型将这些结果与从紧束缚模型获得的每种多型体的计算光导率进行比较。我们的研究结果表明,不同多型体之间石墨烯的中红外光导率响应存在显著差异,这与紧束缚模型所预测的不同。这一观察结果意味着在用于化学传感和红外成像的中红外范围内工作的光子器件中,利用不同的四层多型体具有更大的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c91/10722527/9caec84e4bbc/nl3c02819_0001.jpg

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