TY - JOUR
T1 - Influence of the substrate material on the optical properties of tungsten diselenide monolayers
AU - Lippert, Sina
AU - Schneider, Lorenz Maximilian
AU - Renaud, Dylan
AU - Kang, Kyung Nam
AU - Ajayi, Obafunso
AU - Kuhnert, Jan
AU - Halbich, Marc Uwe
AU - Abdulmunem, Oday M.
AU - Lin, Xing
AU - Hassoon, Khaleel
AU - Edalati-Boostan, Saeideh
AU - Kim, Young Duck
AU - Heimbrodt, Wolfram
AU - Yang, Eui Hyeok
AU - Hone, James C.
AU - Rahimi-Iman, Arash
N1 - Publisher Copyright:
© 2017 IOP Publishing Ltd.
PY - 2017/6
Y1 - 2017/6
N2 - Monolayers of transition-metal dichalcogenides such as WSe2 have become increasingly attractive due to their potential in electrical and optical applications. Because the properties of these 2D systems are known to be affected by their surroundings, we report how the choice of the substrate material affects the optical properties of monolayer WSe2. To accomplish this study, pump-density-dependent micro-photoluminescence measurements are performed with time-integrating and time-resolving acquisition techniques. Spectral information and power-dependent mode intensities are compared at 290 K and 10 K for exfoliated WSe2 on SiO2/Si, sapphire (Al2O3), hBN/Si3N4/Si, and MgF2, indicating substrate-dependent appearance and strength of exciton, trion, and biexciton modes. Additionally, one CVD-grown WSe2 monolayer on sapphire is included in this study for direct comparison with its exfoliated counterpart. Time-resolved micro-photoluminescence shows how radiative decay times strongly differ for different substrate materials. Our data indicates exciton-exciton annihilation as a shortening mechanism at room temperature, and subtle trends in the decay rates in correlation to the dielectric environment at cryogenic temperatures. On the measureable time scales, trends are also related to the extent of the respective 2D-excitonic modes' appearance. This result highlights the importance of further detailed characterization of exciton features in 2D materials, particularly with respect to the choice of substrate.
AB - Monolayers of transition-metal dichalcogenides such as WSe2 have become increasingly attractive due to their potential in electrical and optical applications. Because the properties of these 2D systems are known to be affected by their surroundings, we report how the choice of the substrate material affects the optical properties of monolayer WSe2. To accomplish this study, pump-density-dependent micro-photoluminescence measurements are performed with time-integrating and time-resolving acquisition techniques. Spectral information and power-dependent mode intensities are compared at 290 K and 10 K for exfoliated WSe2 on SiO2/Si, sapphire (Al2O3), hBN/Si3N4/Si, and MgF2, indicating substrate-dependent appearance and strength of exciton, trion, and biexciton modes. Additionally, one CVD-grown WSe2 monolayer on sapphire is included in this study for direct comparison with its exfoliated counterpart. Time-resolved micro-photoluminescence shows how radiative decay times strongly differ for different substrate materials. Our data indicates exciton-exciton annihilation as a shortening mechanism at room temperature, and subtle trends in the decay rates in correlation to the dielectric environment at cryogenic temperatures. On the measureable time scales, trends are also related to the extent of the respective 2D-excitonic modes' appearance. This result highlights the importance of further detailed characterization of exciton features in 2D materials, particularly with respect to the choice of substrate.
KW - 2D excitons
KW - Optical properties
KW - Substrate materials
KW - Transition-metal dichalcogenide
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U2 - 10.1088/2053-1583/aa5b21
DO - 10.1088/2053-1583/aa5b21
M3 - Article
AN - SCOPUS:85021652317
VL - 4
JO - 2D Materials
JF - 2D Materials
IS - 2
M1 - 025045
ER -