Probing the influence of dielectric environment on excitons in monolayer WSe2: Insight from high magnetic fields
arXiv:1608.05093 · doi:10.1021/acs.nanolett.6b03276
Abstract
Excitons in atomically-thin semiconductors necessarily lie close to a surface, and therefore their properties are expected to be strongly influenced by the surrounding dielectric environment. However, systematic studies exploring this role are challenging, in part because the most readily accessible exciton parameter -- the exciton's optical transition energy -- is largely \textit{un}affected by the surrounding medium. Here we show that the role of the dielectric environment is revealed through its systematic influence on the \textit{size} of the exciton, which can be directly measured via the diamagnetic shift of the exciton transition in high magnetic fields. Using exfoliated WSe monolayers affixed to single-mode optical fibers, we tune the surrounding dielectric environment by encapsulating the flakes with different materials, and perform polarized low-temperature magneto-absorption studies to 65~T. The systematic increase of the exciton's size with dielectric screening, and concurrent reduction in binding energy (also inferred from these measurements), is quantitatively compared with leading theoretical models. These results demonstrate how exciton properties can be tuned in future 2D optoelectronic devices.
7 pages, 4 figures
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- Valley-selective optical Stark effect probed by Kerr rotation
- Magneto-spectroscopy of exciton Rydberg states in a CVD grown WSe2 monolayer
- Phonon-assisted exciton and trion conversion efficiency in transition metal Dichalcogenides
- The impact of hexagonal boron nitride encapsulation on the structural and vibrational properties of few layer black phosphorus
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- Excitonic magneto-optics in monolayer transition metal dichalcogenides: From nanoribbons to two-dimensional response
- Theory of the Coherent Response of Magneto-Excitons and Magneto-Biexcitons in Monolayer Transition Metal Dichalcogenides
- Unusual thickness dependence of exciton characteristics in 2D perovskite quantum wells