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Distinct Tailoring Excitons in WS(2)/MoSe(2) Heterostructure by Rectification of Femtosecond Laser Shock Peening.

PubMed
Authors: Dado TB, Shi Y, Zou T, Li Z, Zhao X, Shan Y, Song Y, Rajan RA, Xin W, Yang J

Year

2026

Paper ID

9731

Status

Peer-reviewed

Abstract Read

~2 min

Abstract Words

149

Citations

0

Abstract

Exciton manipulation in two-dimensional materials and their heterostructures is pivotal for advancing optoelectronics and quantum technologies. Pressure-based approaches are powerful for tuning excitonic states; however, they face a fundamental limitation in achieving permanent, spatially uniform modulation in the absence of induced structural defects. Herein, we introduce a rectified femtosecond laser shock peening (R-FLSP) strategy for permanent and nondestructive modulation of excitonic states in WS/MoSe heterostructures. The hybrid architecture is obtained by integrating an additional air cavity and poly(methyl methacrylate) layer, which enables contact-free, spatially uniform shockwave pressure engineering. Under this rectified pressure, monolayers demonstrate photoluminescence quenching with a biphasic energy shift (blueshift-to-redshift), confirming a direct to indirect bandgap transition. In heterostructures, interlayer excitons display 4-fold intensity augmentation at 1.09 GPa, suggesting enhanced interlayer electronic coupling and exciton transition by the R-FLSP treatment. This study establishes a paradigm for engineering fundamental excitonic characteristics and optoelectronic functionalities in two-dimensional materials.

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  • This paper contributes to the Quantum Chemistry research area in the Quantum Articles archive.
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  • Exciton manipulation in two-dimensional materials and their heterostructures is pivotal for advancing optoelectronics and quantum technologies.

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Current Paper #9731 #68465 Bounding Eigenstate Overlap fro... #68440 Classical State Preparation for... #68437 Transition-state lattice modes ... #68423 Selective Fermi-Level Pinning: ...

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