4.4 Article

Local strain-induced band gap fluctuations and exciton localization in aged WS2 monolayers

Journal

AIP ADVANCES
Volume 7, Issue 6, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/1.4985299

Keywords

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Funding

  1. Estonian Ministry of Education and Research [IUT 19-28, IUT 34-27]
  2. European Union through the European Regional Development Fund [TK141]
  3. FP7 project CHEETAH
  4. EC [609788]

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Optical properties of aged WS2 monolayers grown by CVD method on Si/SiO2 substrates are studied using temperature dependent photoluminescence and reflectance contrast spectroscopy. Aged WS2 monolayers have a typical surface roughness about 0.5 nm and, in addition, a high density of nanoparticles (nanocaps) with the base diameter about 30 nm and average height of 7 nm. The A-exciton of aged monolayer has a peak position at 1.951 eV while in as-grown monolayer the peak is at about 24 meV higher energy at room temperature. This red-shift is explained using local tensile strain concept, where strain value of 2.1% was calculated for these nanocap regions. Strained nanocaps have lower band gap energy and excitons will funnel into these regions. At T=10K a double exciton and trion peaks were revealed. The separation between double peaks is about 20 meV and the origin of higher energy peaks is related to the optical band gap energy fluctuations caused by random distribution of local tensile strain due to increased surface roughness. In addition, a wide defect related exciton band X-D was found at about 1.93 eV in all aged monolayers. It is shown that the theory of localized excitons describes well the temperature dependence of peak position and halfwidth of the A-exciton band. The possible origin of nanocaps is also discussed. (C) 2017 Author(s).

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