材料科学
电介质
异质结
单层
激子
光致发光
光电子学
双层
半导体
带隙
三极管
硅
范德瓦尔斯力
凝聚态物理
纳米技术
化学
物理
有机化学
生物化学
膜
分子
作者
Joanna Kutrowska-Girzycka,Emilia Zięba-Ostój,D. Biegańska,Matthias Florian,Alexander Steinhoff,Ernest Rogowicz,Paweł Mrowiński,Kenji Watanabe,Takashi Taniguchi,Christopher Gies,Sefaattin Tongay,Christian Schneider,M. Syperek
出处
期刊:Applied physics reviews
[American Institute of Physics]
日期:2022-12-01
卷期号:9 (4)
被引量:4
摘要
Dielectric engineering of heterostructures made from two-dimensional van der Waals semiconductors is a unique and powerful tool to tailor the electric and optical band gaps solely via the dielectric environment and the crystal thickness modulation. Here, we utilize high quality MoTe2 monolayer and bilayer crystals as a candidate for near-infrared photonic applications. The crystals are exfoliated on various technologically relevant carrier substrates: silicon/silicon dioxide, poly(methyl methacrylate), hexagonal boron nitride, silicon carbide, and silicon nitride. These substrates provide a large range of high frequency dielectric constants from 2.1 to 7.0 for MoTe2-containing heterostructures. We assess the relationship between the environmental dielectric function and Coulomb screening by combining detailed spectroscopic measurements, utilizing low-temperature and high-spatially resolved photoluminescence and contrast reflectivity, with microscopic many-body modeling, to explore the potential of this less-recognized material platform for applications in optoelectronics at photon wavelengths above 1 μm. We observe a redshift of the optical gap emission energy from the monolayer to bilayer regime on the order of 30 meV. Furthermore, the thickness controlled shift is slightly larger than the one induced by the local dielectric environment, which ranges on the order of 20 meV for the MoTe2 monolayers and on the order of 8 meV for the MoTe2 bilayers. We also show that the local dielectric screening barely affects the trion binding energy, which is captured by our microscopic model, accounting for the screened Coulomb potential for the heterostructures.
科研通智能强力驱动
Strongly Powered by AbleSci AI