Genser Jakob, Nazzari Daniele, Ritter Viktoria, Bethge Ole, Watanabe Kenji, Taniguchi Takashi, Bertagnolli Emmerich, Bechstedt Friedhelm, Lugstein Alois
Institute of Solid State Electronics, Technische Universität Wien, Gußhausstraße 25-25a, 1040 Vienna, Austria.
Infineon Technologies Austria AG, Siemensstraße 2, 9500 Villach, Austria.
Nano Lett. 2021 Jun 23;21(12):5301-5307. doi: 10.1021/acs.nanolett.1c01440. Epub 2021 Jun 7.
The allotropic affinity for bulk silicon and unique electronic and optical properties make silicene a promising candidate for future high-performance devices compatible with mature complementary metal-oxide-semiconductor technology. However, silicene's outstanding properties are not preserved on its most prominent growth templates, due to strong substrate interactions and hybridization effects. In this letter, we report the optical properties of silicene epitaxially grown on Au(111). A novel in situ passivation methodology with few-layer hexagonal boron nitride enables detailed ex situ characterization at ambient conditions via μ-Raman spectroscopy and reflectance measurements. The optical properties of silicene on Au(111) appeared to be in accordance with the characteristics predicted theoretically for freestanding silicene, allowing the conclusion that its prominent electronic properties are preserved. The absorption features are, however, modified by many-body effects induced by the Au substrate due to an increased screening of electron-hole interactions.
硅烯对块状硅的同素异形体亲和力以及独特的电子和光学特性,使其成为未来与成熟互补金属氧化物半导体技术兼容的高性能器件的有前途候选材料。然而,由于强烈的衬底相互作用和杂化效应,硅烯最突出的生长模板上无法保留其优异特性。在本信函中,我们报告了在Au(111)上外延生长的硅烯的光学特性。一种采用少层六方氮化硼的新型原位钝化方法,能够通过μ拉曼光谱和反射率测量在环境条件下进行详细的非原位表征。Au(111)上硅烯的光学特性似乎与理论上预测的独立硅烯特性相符,由此得出其突出的电子特性得以保留的结论。然而,由于金衬底引起的多体效应增加了对电子-空穴相互作用的屏蔽,吸收特征发生了改变。