Bragg-Enhanced Time-Domain Brillouin Scattering from a Propagating Acoustic Grating

Abstract Generation and detection of coherent phonons in semiconductors by femtosecond optical pulses is a powerful tool for high-frequency acoustic control of their electronic properties. Here, we demonstrate a propagating one-dimensional acoustic grating in bulk semiconductors using above-band-gap excitation by a train of laser pulses with a high repetition rate of 1 GHz. This approach enables shaping the coherent acoustic phonon spectrum and leads to a significant enhancement of Brillouin light scattering at selected probe wavelengths in a pump–probe configuration. We demonstrate this effect at a cryogenic temperature of 5 K in prototypical semiconductor systems, namely bulk crystalline GaAs and (Cd,Zn)Te, which serve as benchmark materials for the proposed method. The spectral dependence of the time-domain Brillouin light scattering amplitude exhibits resonant peaks at discrete probe wavelengths arising from Bragg reflection of the probe light by the propagating acoustic grating. A 10–30-fold resonant enhancement of the signal amplitude is observed for GaAs and (Cd,Zn)Te, and is determined by the finite spectral width of the probe pulse. With further spectral narrowing, enhancements of the order ∼100–150 are expected, set by the number N of strain pulses in the acoustic grating within the sample, and ultimately limited by the material parameters and sample thickness.

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Publication Details

Journal
ACS Photonics
Published
2026-09-15
DOI
https://doi.org/10.1021/acsphotonics.6c01370
Primary Topic
Ultrasonics and Acoustic Wave Propagation
Type
article
Field-Weighted Citation Impact
0.00

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article

Bragg-Enhanced Time-Domain Brillouin Scattering from a Propagating Acoustic Grating

И. А. Акимов, M. Bayer, V. L. Korenev, D. O. Horiachyi et al.
ACS Photonics
Ultrasonics and Acoustic Wave Propagation
article

Bragg-Enhanced Time-Domain Brillouin Scattering from a Propagating Acoustic Grating

И. А. Акимов, M. Bayer, V. L. Korenev, D. O. Horiachyi, O. S. Ken, D. R. Yakovlev, A. V. Trifonov
article en

Abstract

Abstract Generation and detection of coherent phonons in semiconductors by femtosecond optical pulses is a powerful tool for high-frequency acoustic control of their electronic properties. Here, we demonstrate a propagating one-dimensional acoustic grating in bulk semiconductors using above-band-gap excitation by a train of laser pulses with a high repetition rate of 1 GHz. This approach enables shaping the coherent acoustic phonon spectrum and leads to a significant enhancement of Brillouin light scattering at selected probe wavelengths in a pump–probe configuration. We demonstrate this effect at a cryogenic temperature of 5 K in prototypical semiconductor systems, namely bulk crystalline GaAs and (Cd,Zn)Te, which serve as benchmark materials for the proposed method. The spectral dependence of the time-domain Brillouin light scattering amplitude exhibits resonant peaks at discrete probe wavelengths arising from Bragg reflection of the probe light by the propagating acoustic grating. A 10–30-fold resonant enhancement of the signal amplitude is observed for GaAs and (Cd,Zn)Te, and is determined by the finite spectral width of the probe pulse. With further spectral narrowing, enhancements of the order ∼100–150 are expected, set by the number N of strain pulses in the acoustic grating within the sample, and ultimately limited by the material parameters and sample thickness.

ACS Photonics
TU Dortmund University (DE)
Land Nordrhein-Westfalen
Openalex Percentile: Top 60%
Ultrasonics and Acoustic Wave Propagation
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Bragg-Enhanced Time-Domain Brillouin Scattering from a Propagating Acoustic Grating — И. А. Акимов, M. Bayer, et al. · ACS Photonics (2026) | TGRS Research Map | TGRS