English

Phonon-enhanced strain sensitivity of quantum dots in two-dimensional semiconductors

Quantum Physics 2026-02-20 v1 Mesoscale and Nanoscale Physics Optics

Abstract

Two-dimensional semiconductors have attracted considerable interest for integration into emerging quantum photonic networks. Strain engineering of monolayer transition-metal dichalcogenides (ML-TMDs) enables the tuning of light-matter interactions and associated optoelectronic properties, and generates new functionalities, including the formation of quantum dots (QDs). Here, we combine spatially resolved micro-photoluminescence (μ\mu-PL) spectroscopy from cryogenic (4-\text{-}94 K) to room temperature with micro-Raman spectroscopy at room temperature to investigate the strain-dependent emission energies of thousands of individual QDs in ML-WS2_2 and ML-WSe2_2, integrated across multiple heterostructures and a piezoelectric device. Compared with delocalized excitons, QDs in both materials exhibit enhanced strain sensitivities of their emission energies - approximately fourfold in WS2_2 and twofold in WSe2_2 - leading to pronounced broadening of the ensemble emission linewidth. Temperature-dependent μ\mu-PL spectroscopy combined with dynamic strain tuning experiments further reveal that the enhanced strain sensitivity of individual QDs originates from strengthened interactions with low-energy phonons induced by quantum confinement. Our results demonstrate a versatile strain-engineering approach with potential for spectral matching across solid-state, atomic, and hybrid quantum photonic networks, and provide new insights into phonon-QD interactions in two-dimensional semiconductors.

Keywords

Cite

@article{arxiv.2602.17212,
  title  = {Phonon-enhanced strain sensitivity of quantum dots in two-dimensional semiconductors},
  author = {Sumitra Shit and Yunus Waheed and Jithin Thoppil Surendran and Indrajeet Dhananjay Prasad and Kenji Watanabe and Takashi Taniguchi and Santosh Kumar},
  journal= {arXiv preprint arXiv:2602.17212},
  year   = {2026}
}

Comments

17 pages, 5 figures, methods, supporting information