Interference of ultrahigh frequency acoustic phonons from distant quasi-continuous sources

Fuente: arXiv
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Main Authors: Xiang, C., de Oliveira, E. R. Cardozo, Sandeep, S., Papatryfonos, K., Morassi, M., Gratiet, L. Le, Harouri, A., Sagnes, I., Lemaitre, A., Ortiz, O., Esmann, M., Lanzillotti-Kimura, N. D.
Format: Preprint
Published: 2024
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author Xiang, C.
de Oliveira, E. R. Cardozo
Sandeep, S.
Papatryfonos, K.
Morassi, M.
Gratiet, L. Le
Harouri, A.
Sagnes, I.
Lemaitre, A.
Ortiz, O.
Esmann, M.
Lanzillotti-Kimura, N. D.
author_facet Xiang, C.
de Oliveira, E. R. Cardozo
Sandeep, S.
Papatryfonos, K.
Morassi, M.
Gratiet, L. Le
Harouri, A.
Sagnes, I.
Lemaitre, A.
Ortiz, O.
Esmann, M.
Lanzillotti-Kimura, N. D.
contents The generation of propagating acoustic waves is essential for telecommunication applications, quantum technologies, and sensing. Up to now, the electrical generation has been at the core of most implementations, but is technologically limited to a few gigahertz. Overcoming this frequency limit holds the prospect of faster modulators, quantum acoustics at higher working temperatures, nanoacoustic sensing from smaller volumes. Alternatively, the optical excitation of acoustic resonators has unlocked frequencies up to 1 THz, but in most cases, the acoustic energy cannot be efficiently extracted from the resonator into a propagating wave. Here, we demonstrate a quasi-continuous and coherent source of 20 GHz acoustic phonons, based on a ridge waveguide, structured in the vertical direction as a high-Q acousto-optic resonator. The high frequency phonons propagate up to 20 $μ$m away from the source, with a decay rate of $\sim$1.14 dB/$μ$m. We demonstrate the coherence between acoustic phonons generated from two distant sources through spatio-temporal interference. This concept could be scaled up to a larger number of sources, which enable a new generation of optically programmed, reconfigurable nanoacoustic devices and applications.
format Preprint
id arxiv_https___arxiv_org_abs_2407_06821
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Interference of ultrahigh frequency acoustic phonons from distant quasi-continuous sources
Xiang, C.
de Oliveira, E. R. Cardozo
Sandeep, S.
Papatryfonos, K.
Morassi, M.
Gratiet, L. Le
Harouri, A.
Sagnes, I.
Lemaitre, A.
Ortiz, O.
Esmann, M.
Lanzillotti-Kimura, N. D.
Mesoscale and Nanoscale Physics
Materials Science
Optics
The generation of propagating acoustic waves is essential for telecommunication applications, quantum technologies, and sensing. Up to now, the electrical generation has been at the core of most implementations, but is technologically limited to a few gigahertz. Overcoming this frequency limit holds the prospect of faster modulators, quantum acoustics at higher working temperatures, nanoacoustic sensing from smaller volumes. Alternatively, the optical excitation of acoustic resonators has unlocked frequencies up to 1 THz, but in most cases, the acoustic energy cannot be efficiently extracted from the resonator into a propagating wave. Here, we demonstrate a quasi-continuous and coherent source of 20 GHz acoustic phonons, based on a ridge waveguide, structured in the vertical direction as a high-Q acousto-optic resonator. The high frequency phonons propagate up to 20 $μ$m away from the source, with a decay rate of $\sim$1.14 dB/$μ$m. We demonstrate the coherence between acoustic phonons generated from two distant sources through spatio-temporal interference. This concept could be scaled up to a larger number of sources, which enable a new generation of optically programmed, reconfigurable nanoacoustic devices and applications.
title Interference of ultrahigh frequency acoustic phonons from distant quasi-continuous sources
topic Mesoscale and Nanoscale Physics
Materials Science
Optics
url https://arxiv.org/abs/2407.06821