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Direct determination of monolayer MoS2 and WSe2 exciton binding energies on insulating and metallic substrates
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Direct determination of monolayer MoS2 and WSe2 exciton binding energies on insulating and metallic substrates

Soohyung Park, Niklas Mutz, Thorsten Schultz, Sylke Blumstengel, Ali Han, Areej Aljarb, Lain-Jong Li, Emil J. W. List-Kratochvil, Patrick AmsalemNorbert Koch
2D Materials, 卷.5(2), 025003
01/2018

摘要

electronic structure exciton binding energy excitons IPES monolayer transition metal dichalcogenide MoS2 UPS WSe2 Chemistry (all) Materials Science (all) Condensed Matter Physics Mechanics of Materials Mechanical Engineering
Understanding the excitonic nature of excited states in two-dimensional (2D) transition-metal dichalcogenides (TMDCs) is of key importance to make use of their optical and charge transport properties in optoelectronic applications. We contribute to this by the direct experimental determination of the exciton binding energy (E b,exc ) of monolayer MoS 2 and WSe 2 on two fundamentally different substrates, i.e. the insulator sapphire and the metal gold. By combining angle-resolved direct and inverse photoelectron spectroscopy we measure the electronic band gap (E g ), and by reflectance measurements the optical excitonic band gap (E exc ). The difference of these two energies is E b,exc . The values of E g and E b,exc are 2.11 eV and 240 meV for MoS 2 on sapphire, and 1.89 eV and 240 meV for WSe 2 on sapphire. On Au E b,exc is decreased to 90 meV and 140 meV for MoS 2 and WSe 2 , respectively. The significant E b,exc reduction is primarily due to a reduction of E g resulting from enhanced screening by the metal, while E exc is barely decreased for the metal support. Energy level diagrams determined at the K-point of the 2D TMDCs Brillouin zone show that MoS 2 has more p-type character on Au as compared to sapphire, while WSe 2 appears close to intrinsic on both. These results demonstrate that the impact of the dielectric environment of 2D TMDCs is more pronounced for individual charge carriers than for a correlated electron-hole pair, i.e. the exciton. A proper dielectric surrounding design for such 2D semiconductors can therefore be used to facilitate superior optoelectronic device function.

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https://doi.org/10.1088/2053-1583/aaa4ca檢視
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