Ultra Localized Optoelectronic Properties of Nanobubbles in 2D Semiconductors
arXiv:2208.14518 · doi:10.1021/acs.nanolett.2c02265
Abstract
The optical properties of transition metal dichalcogenides have previously been modified at the nanoscale by using mechanical and electrical nanostructuring. However, a clear experimental picture relating the local electronic structure with emission properties in such structures has so far been lacking. Here, we use a combination of scanning tunneling microscopy (STM) and near-field photoluminescence (nano-PL) to probe the electronic and optical properties of single nano-bubbles in bilayer heterostructures of WSe2 on MoSe2. We show from tunneling spectroscopy that there are electronic states deeply localized in the gap at the edge of such bubbles, which are independent of the presence of chemical defects in the layers. We also show a significant change in the local bandgap on the bubble, with a continuous evolution to the edge of the bubble over a length scale of ~20 nm. Nano-PL measurements observe a continuous redshift of the interlayer exciton on entering the bubble, in agreement with the band to band transitions measured by STM. We use self-consistent Schrödinger-Poisson (SP) simulations to capture the essence of the experimental results and find that strong doping in the bubble region is a key ingredient to achieving the observed localized states, together with mechanical strain.
References in corpus (8)
- Measurement of the optical dielectric function of transition metal dichalcogenide monolayers: MoS2, MoSe2, WS2 and WSe2
- k.p theory for two-dimensional transition metal dichalcogenide semiconductors
- Strained bubbles in van der Waals heterostructures as local emitters of photoluminescence with adjustable wavelength
- Direct Determination of Band Gap Renormalization in Photo-Excited Monolayer MoS2
- Optically discriminating carrier-induced quasiparticle band gap and exciton energy renormalization in monolayer MoS2
- Quantum-dot-like states in molybdenum disulfide nanostructures due to the interplay of local surface wrinkling, strain, and dielectric confinement
- Dark-exciton driven energy funneling into dielectric inhomogeneities in two-dimensional semiconductors
- Ultra-sharp lateral junctions in modulation-doped graphene