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Atomically Flat Dielectric Patterns for Band Gap Engineering and Lateral Junction Formation in MoSe$_2$ Monolayers

Materials Science 2024-10-22 v2 Mesoscale and Nanoscale Physics

Abstract

Combining a precise sputter etching method with subsequent AlOx_x growth within an atomic layer deposition chamber enables fabrication of atomically flat lateral patterns of SiO2_2 and AlOx_x. The transfer of MoSe2_2 monolayers onto these dielectrically modulated substrates results in formation of lateral heterojunctions, with the flat substrate topography leading to minimal strain across the junction. Kelvin probe force microscopy (KPFM) measurements show significant variations in the contact potential difference (CPD) across the interface, with AlOx_x regions inducing a 230~mV increase in CPD. Spatially resolved photoluminescence spectroscopy reveals shifts in spectral weight of neutral and charged exciton species across the different dielectric regions. On the AlOx_x side, the Fermi energy moves closer to the conduction band, leading to a higher trion-to-exciton ratio, indicating a bandgap shift consistent with CPD changes. In addition, transient reflection spectroscopy highlights the influence of the dielectric environment on carrier dynamics, with the SiO2_2 side exhibiting rapid carrier decay typical of neutral exciton recombination. In contrast, the AlOx_x side shows slower, mixed decay behavior consistent with conversion of trions back into excitons. These results demonstrate how dielectric substrate engineering can tune the electronic and optical characteristics of proximal two-dimensional materials, allowing scalable fabrication of advanced junctions for novel (opto)electronics applications.

Keywords

Cite

@article{arxiv.2409.18518,
  title  = {Atomically Flat Dielectric Patterns for Band Gap Engineering and Lateral Junction Formation in MoSe$_2$ Monolayers},
  author = {Philipp Moser and Lukas M. Wolz and Alex Henning and Andreas Thurn and Matthias Kuhl and Peirui Ji and Pedro Soubelet and Martin Schalk and Johanna Eichhorn and Ian D. Sharp and Andreas V. Stier and Jonathan J. Finley},
  journal= {arXiv preprint arXiv:2409.18518},
  year   = {2024}
}

Comments

24 pages, 5 figures. SI: 2 pages, 3 figures. We welcome your feedback!

R2 v1 2026-06-28T18:59:10.638Z