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Evidence for a spin acoustic surface plasmon from inelastic atom scattering. / Benedek, G.; Bernasconi, M.; Campi, D.; Silkin, I. V.; Chernov, I. P.; Silkin, V. M.; Chulkov, E. V.; Echenique, P. M.; Toennies, J. P.; Anemone, G.; Al Taleb, A.; Miranda, R.; Farias, D.

In: Scientific Reports, Vol. 11, No. 1, 1506, 12.2021.

Research output: Contribution to journalArticlepeer-review

Harvard

Benedek, G, Bernasconi, M, Campi, D, Silkin, IV, Chernov, IP, Silkin, VM, Chulkov, EV, Echenique, PM, Toennies, JP, Anemone, G, Al Taleb, A, Miranda, R & Farias, D 2021, 'Evidence for a spin acoustic surface plasmon from inelastic atom scattering', Scientific Reports, vol. 11, no. 1, 1506. https://doi.org/10.1038/s41598-021-81018-9

APA

Benedek, G., Bernasconi, M., Campi, D., Silkin, I. V., Chernov, I. P., Silkin, V. M., Chulkov, E. V., Echenique, P. M., Toennies, J. P., Anemone, G., Al Taleb, A., Miranda, R., & Farias, D. (2021). Evidence for a spin acoustic surface plasmon from inelastic atom scattering. Scientific Reports, 11(1), [1506]. https://doi.org/10.1038/s41598-021-81018-9

Vancouver

Benedek G, Bernasconi M, Campi D, Silkin IV, Chernov IP, Silkin VM et al. Evidence for a spin acoustic surface plasmon from inelastic atom scattering. Scientific Reports. 2021 Dec;11(1). 1506. https://doi.org/10.1038/s41598-021-81018-9

Author

Benedek, G. ; Bernasconi, M. ; Campi, D. ; Silkin, I. V. ; Chernov, I. P. ; Silkin, V. M. ; Chulkov, E. V. ; Echenique, P. M. ; Toennies, J. P. ; Anemone, G. ; Al Taleb, A. ; Miranda, R. ; Farias, D. / Evidence for a spin acoustic surface plasmon from inelastic atom scattering. In: Scientific Reports. 2021 ; Vol. 11, No. 1.

BibTeX

@article{081027feecf046ad8311edab182e256d,
title = "Evidence for a spin acoustic surface plasmon from inelastic atom scattering",
abstract = "Closed-shell atoms scattered from a metal surface exchange energy and momentum with surface phonons mostly via the interposed surface valence electrons, i.e., via the creation of virtual electron-hole pairs. The latter can then decay into surface phonons via electron-phonon interaction, as well as into acoustic surface plasmons (ASPs). While the first channel is the basis of the current inelastic atom scattering (IAS) surface-phonon spectroscopy, no attempt to observe ASPs with IAS has been made so far. In this study we provide evidence of ASP in Ni(111) with both Ne atom scattering and He atom scattering. While the former measurements confirm and extend so far unexplained data, the latter illustrate the coupling of ASP with phonons inside the surface-projected phonon continuum, leading to a substantial reduction of the ASP velocity and possibly to avoided crossing with the optical surface phonon branches. The analysis is substantiated by a self-consistent calculation of the surface response function to atom collisions and of the first-principle surface-phonon dynamics of Ni(111). It is shown that in Ni(111) ASP originate from the majority-spin Shockley surface state and are therefore collective oscillation of surface electrons with the same spin, i.e. it represents a new kind of collective quasiparticle: a Spin Acoustic Surface Plasmon (SASP).",
keywords = "LOCALIZED DYNAMIC PERTURBATIONS, TOTAL-ENERGY CALCULATIONS, METAL-SURFACES, ELECTRON-GAS, DENSITY, NI, VIBRATIONS, PHONONS, DIFFRACTION, EXCITATION",
author = "G. Benedek and M. Bernasconi and D. Campi and Silkin, {I. V.} and Chernov, {I. P.} and Silkin, {V. M.} and Chulkov, {E. V.} and Echenique, {P. M.} and Toennies, {J. P.} and G. Anemone and {Al Taleb}, A. and R. Miranda and D. Farias",
note = "Publisher Copyright: {\textcopyright} 2021, The Author(s).",
year = "2021",
month = dec,
doi = "10.1038/s41598-021-81018-9",
language = "English",
volume = "11",
journal = "Scientific Reports",
issn = "2045-2322",
publisher = "Nature Publishing Group",
number = "1",

}

RIS

TY - JOUR

T1 - Evidence for a spin acoustic surface plasmon from inelastic atom scattering

AU - Benedek, G.

AU - Bernasconi, M.

AU - Campi, D.

AU - Silkin, I. V.

AU - Chernov, I. P.

AU - Silkin, V. M.

AU - Chulkov, E. V.

AU - Echenique, P. M.

AU - Toennies, J. P.

AU - Anemone, G.

AU - Al Taleb, A.

AU - Miranda, R.

AU - Farias, D.

N1 - Publisher Copyright: © 2021, The Author(s).

PY - 2021/12

Y1 - 2021/12

N2 - Closed-shell atoms scattered from a metal surface exchange energy and momentum with surface phonons mostly via the interposed surface valence electrons, i.e., via the creation of virtual electron-hole pairs. The latter can then decay into surface phonons via electron-phonon interaction, as well as into acoustic surface plasmons (ASPs). While the first channel is the basis of the current inelastic atom scattering (IAS) surface-phonon spectroscopy, no attempt to observe ASPs with IAS has been made so far. In this study we provide evidence of ASP in Ni(111) with both Ne atom scattering and He atom scattering. While the former measurements confirm and extend so far unexplained data, the latter illustrate the coupling of ASP with phonons inside the surface-projected phonon continuum, leading to a substantial reduction of the ASP velocity and possibly to avoided crossing with the optical surface phonon branches. The analysis is substantiated by a self-consistent calculation of the surface response function to atom collisions and of the first-principle surface-phonon dynamics of Ni(111). It is shown that in Ni(111) ASP originate from the majority-spin Shockley surface state and are therefore collective oscillation of surface electrons with the same spin, i.e. it represents a new kind of collective quasiparticle: a Spin Acoustic Surface Plasmon (SASP).

AB - Closed-shell atoms scattered from a metal surface exchange energy and momentum with surface phonons mostly via the interposed surface valence electrons, i.e., via the creation of virtual electron-hole pairs. The latter can then decay into surface phonons via electron-phonon interaction, as well as into acoustic surface plasmons (ASPs). While the first channel is the basis of the current inelastic atom scattering (IAS) surface-phonon spectroscopy, no attempt to observe ASPs with IAS has been made so far. In this study we provide evidence of ASP in Ni(111) with both Ne atom scattering and He atom scattering. While the former measurements confirm and extend so far unexplained data, the latter illustrate the coupling of ASP with phonons inside the surface-projected phonon continuum, leading to a substantial reduction of the ASP velocity and possibly to avoided crossing with the optical surface phonon branches. The analysis is substantiated by a self-consistent calculation of the surface response function to atom collisions and of the first-principle surface-phonon dynamics of Ni(111). It is shown that in Ni(111) ASP originate from the majority-spin Shockley surface state and are therefore collective oscillation of surface electrons with the same spin, i.e. it represents a new kind of collective quasiparticle: a Spin Acoustic Surface Plasmon (SASP).

KW - LOCALIZED DYNAMIC PERTURBATIONS

KW - TOTAL-ENERGY CALCULATIONS

KW - METAL-SURFACES

KW - ELECTRON-GAS

KW - DENSITY

KW - NI

KW - VIBRATIONS

KW - PHONONS

KW - DIFFRACTION

KW - EXCITATION

UR - http://www.scopus.com/inward/record.url?scp=85099460180&partnerID=8YFLogxK

UR - https://www.mendeley.com/catalogue/02997b93-d3d3-3bd0-9988-af72fa5364b7/

U2 - 10.1038/s41598-021-81018-9

DO - 10.1038/s41598-021-81018-9

M3 - Article

VL - 11

JO - Scientific Reports

JF - Scientific Reports

SN - 2045-2322

IS - 1

M1 - 1506

ER -

ID: 88190125