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May 10, 2026npj 2D Materials and Applications0 citationsOpen Access

Electronic localization and optical activity of strain-engineered transition-metal dichalcogenide nanobubbles

SVStefan VeljaASAlexander SteinhoffJKJannis Krumland

Key Points

  • The aim is to explore the structural and electronic properties of strain-engineered transition-metal dichalcogenide nanobubbles and their implications for optical behavior.
  • Ab initio analysis of MoS2, WS2, MoSe2, and WSe2 nanobubbles
  • Investigation of band structures and orbital contributions
  • Examination of strain effects on electronic properties and geometries
  • Strain modifies band gaps and induces non-dispersive valence states
  • Transitions from apex-localized valence states are predominantly dark
  • Nanobubbles show limitations as single-photon emitters, revealing essential structure-property relationships

Abstract

Abstract Strain-engineered transition-metal dichalcogenide nanobubbles are promising platforms for quantum emission, as revealed by recent experimental observations. In this work, we present an ab initio investigation of MoS 2 , WS 2 , MoSe 2 , and WSe 2 nanobubbles, linking their structural and electronic properties to predictions of their optical activity. Inflating forces yield tunable geometries with non-uniform, apex-concentrated strain, which is sensitive to material rigidity. Strain modifies band gaps and universally induces non-dispersive valence states, exhibiting composition-dependent wave-function character, as revealed by an in-depth analysis of band structures and orbital contributions. Crucially, transitions from these apex-localized valence states are predominantly dark. This characteristic is attributed to their localization at the Γ -point, inhibiting transitions to the lowest unoccupied states that reside at the K-valley. While revealing that the herein considered sub-10-nm nanobubbles fall short as single-photon emitters, our findings provide essential understanding of the structure-property relations in emerging quantum materials, providing robust design rules to optimize their characteristics for novel quantum applications.

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Cite This Study

Velja et al. (2026) studied this question.

synapsesocial.com/papers/6a002087c8f74e3340f9b698https://doi.org/10.1038/s41699-026-00702-4
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