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March 12, 20262 citations

Ultrafast Acoustic Modulation of Second-Harmonic Generation in Monolayer Transition-Metal Dichalcogenides.

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TYTakumi YamamotoHKHiroshi KanzawaYTYuta Takahashi

Key Points

  • The aim is to achieve high-speed modulation of second-harmonic generation in monolayer transition-metal dichalcogenides through acoustic methods.
  • Applied surface acoustic waves to monolayer materials for modulation.
  • Utilized phase-synchronized second-harmonic measurement techniques.
  • Employed stroboscopic detection to visualize dynamic modulation.
  • Theoretical modeling was performed to determine photoelastic coefficients.
  • Achieved dynamic second-harmonic modulation at a frequency of 226 MHz.
  • Established a direct relationship between acoustic fields and optical nonlinearities.
  • Quantitatively extracted SAW-induced dynamic strain using theoretical modeling.

Abstract

High-speed modulation and deterministic control of optical nonlinear processes in nanomaterials are essential for realizing future nanoscale optoelectronic devices. Applying strain is a ubiquitous and versatile approach to deform atomically thin materials, allowing direct modification of their electronic and optical properties. Yet, strain engineering of nonlinear processes has so far relied predominantly on static approaches, which inherently limit modulation speed, reproducibility, and device scalability. Here, we demonstrate ultrafast acoustic modulation of second-harmonic (SH) generation in monolayer transition-metal dichalcogenides using surface acoustic waves (SAWs). By employing a fully phase-synchronized SH measurement combined with stroboscopic surface displacement detection, we directly visualize dynamic SH modulation at a frequency of 226 MHz. Moreover, theoretical modeling and determination of photoelastic coefficients enable quantitative extraction of the SAW-induced dynamic strain. Our results establish a direct link between acoustic fields and optical nonlinearities, providing a robust platform for dynamic strain engineering in two-dimensional nanophotonic devices.

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Cite This Study

Yamamoto et al. (2026) studied this question.

synapsesocial.com/papers/69b25be596eeacc4fceca50chttps://doi.org/10.1021/acs.nanolett.6c00268
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