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Probing Thermomechanics at the Nanoscale: Impulsively Excited Pseudosurface Acoustic Waves in Hypersonic Phononic Crystals

[Image: see text] High-frequency surface acoustic waves can be generated by ultrafast laser excitation of nanoscale patterned surfaces. Here we study this phenomenon in the hypersonic frequency limit. By modeling the thermomechanics from first-principles, we calculate the system’s initial heat-drive...

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Autores principales: Nardi, Damiano, Travagliati, Marco, Siemens, Mark E., Li, Qing, Murnane, Margaret M., Kapteyn, Henry C., Ferrini, Gabriele, Parmigiani, Fulvio, Banfi, Francesco
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2011
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3192463/
https://www.ncbi.nlm.nih.gov/pubmed/21910426
http://dx.doi.org/10.1021/nl201863n
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author Nardi, Damiano
Travagliati, Marco
Siemens, Mark E.
Li, Qing
Murnane, Margaret M.
Kapteyn, Henry C.
Ferrini, Gabriele
Parmigiani, Fulvio
Banfi, Francesco
author_facet Nardi, Damiano
Travagliati, Marco
Siemens, Mark E.
Li, Qing
Murnane, Margaret M.
Kapteyn, Henry C.
Ferrini, Gabriele
Parmigiani, Fulvio
Banfi, Francesco
author_sort Nardi, Damiano
collection PubMed
description [Image: see text] High-frequency surface acoustic waves can be generated by ultrafast laser excitation of nanoscale patterned surfaces. Here we study this phenomenon in the hypersonic frequency limit. By modeling the thermomechanics from first-principles, we calculate the system’s initial heat-driven impulsive response and follow its time evolution. A scheme is introduced to quantitatively access frequencies and lifetimes of the composite system’s excited eigenmodes. A spectral decomposition of the calculated response on the eigemodes of the system reveals asymmetric resonances that result from the coupling between surface and bulk acoustic modes. This finding allows evaluation of impulsively excited pseudosurface acoustic wave frequencies and lifetimes and expands our understanding of the scattering of surface waves in mesoscale metamaterials. The model is successfully benchmarked against time-resolved optical diffraction measurements performed on one-dimensional and two-dimensional surface phononic crystals, probed using light at extreme ultraviolet and near-infrared wavelengths.
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spelling pubmed-31924632011-10-13 Probing Thermomechanics at the Nanoscale: Impulsively Excited Pseudosurface Acoustic Waves in Hypersonic Phononic Crystals Nardi, Damiano Travagliati, Marco Siemens, Mark E. Li, Qing Murnane, Margaret M. Kapteyn, Henry C. Ferrini, Gabriele Parmigiani, Fulvio Banfi, Francesco Nano Lett [Image: see text] High-frequency surface acoustic waves can be generated by ultrafast laser excitation of nanoscale patterned surfaces. Here we study this phenomenon in the hypersonic frequency limit. By modeling the thermomechanics from first-principles, we calculate the system’s initial heat-driven impulsive response and follow its time evolution. A scheme is introduced to quantitatively access frequencies and lifetimes of the composite system’s excited eigenmodes. A spectral decomposition of the calculated response on the eigemodes of the system reveals asymmetric resonances that result from the coupling between surface and bulk acoustic modes. This finding allows evaluation of impulsively excited pseudosurface acoustic wave frequencies and lifetimes and expands our understanding of the scattering of surface waves in mesoscale metamaterials. The model is successfully benchmarked against time-resolved optical diffraction measurements performed on one-dimensional and two-dimensional surface phononic crystals, probed using light at extreme ultraviolet and near-infrared wavelengths. American Chemical Society 2011-09-12 2011-10-12 /pmc/articles/PMC3192463/ /pubmed/21910426 http://dx.doi.org/10.1021/nl201863n Text en Copyright © 2011 American Chemical Society http://pubs.acs.org This is an open-access article distributed under the ACS AuthorChoice Terms & Conditions. Any use of this article, must conform to the terms of that license which are available at http://pubs.acs.org.
spellingShingle Nardi, Damiano
Travagliati, Marco
Siemens, Mark E.
Li, Qing
Murnane, Margaret M.
Kapteyn, Henry C.
Ferrini, Gabriele
Parmigiani, Fulvio
Banfi, Francesco
Probing Thermomechanics at the Nanoscale: Impulsively Excited Pseudosurface Acoustic Waves in Hypersonic Phononic Crystals
title Probing Thermomechanics at the Nanoscale: Impulsively Excited Pseudosurface Acoustic Waves in Hypersonic Phononic Crystals
title_full Probing Thermomechanics at the Nanoscale: Impulsively Excited Pseudosurface Acoustic Waves in Hypersonic Phononic Crystals
title_fullStr Probing Thermomechanics at the Nanoscale: Impulsively Excited Pseudosurface Acoustic Waves in Hypersonic Phononic Crystals
title_full_unstemmed Probing Thermomechanics at the Nanoscale: Impulsively Excited Pseudosurface Acoustic Waves in Hypersonic Phononic Crystals
title_short Probing Thermomechanics at the Nanoscale: Impulsively Excited Pseudosurface Acoustic Waves in Hypersonic Phononic Crystals
title_sort probing thermomechanics at the nanoscale: impulsively excited pseudosurface acoustic waves in hypersonic phononic crystals
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3192463/
https://www.ncbi.nlm.nih.gov/pubmed/21910426
http://dx.doi.org/10.1021/nl201863n
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