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  Inelastic Light Scattering in the Vicinity of a Single-Atom Quantum Point Contact in a Plasmonic Picocavity

Liu, S., Bonafé, F., Appel, H., Rubio, A., Wolf, M., & Kumagai, T. (2023). Inelastic Light Scattering in the Vicinity of a Single-Atom Quantum Point Contact in a Plasmonic Picocavity. ACS Nano, 17(11), 10172-10180. doi:10.1021/acsnano.3c00261.

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Supporting Information: Reproducibility of the ILS spectra recorded over a single adatom, Analysis of the ground state electronic density and the tip-adatom binding energy, Normal modes with the largest adatom displacement, Relaxation curve for the tilted tip A configuration, Simulation of the tunneling current in the STM junction, Simulations with a weaker field strength, Simulation of formation, collapse and regeneration of the QPC (PDF) Supporting Information Movies 1 and 2: sequential process including formation of single- and multiatom contacts, respectively, reformation, and breaking of the single-atom contact (MP4, MP4)
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 Creators:
Liu, S.1, Author
Bonafé, F.2, Author           
Appel, H.2, Author           
Rubio, A.2, 3, Author           
Wolf, M.1, Author
Kumagai, T.1, 4, Author
Affiliations:
1Department of Physical Chemistry, Fritz-Haber Institute of the Max-Planck Society, ou_persistent22              
2Theory Group, Theory Department, Max Planck Institute for the Structure and Dynamics of Matter, Max Planck Society, ou_2266715              
3Center for Computational Quantum Physics (CCQ), Flatiron Institute, ou_persistent22              
4Center for Mesoscopic Sciences, Institute for Molecular Science, ou_persistent22              

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Free keywords: plasmonic picocavity, quantum point contact, inelastic light scattering, low-temperature optical scanning tunneling microscopy, tip-enhanced Raman scattering, time-dependent density functional theory
 Abstract: Electromagnetic fields can be confined in the presence of metal nanostructures. Recently, subnanometer scale confinement has been demonstrated to occur at atomic protrusions on plasmonic nanostructures. Such an extreme field may dominate atomic-scale light–matter interactions in “picocavities”. However, it remains to be elucidated how atomic-level structures and electron transport affect plasmonic properties of a picocavity. Here, using low-temperature optical scanning tunneling microscopy (STM), we investigate inelastic light scattering (ILS) in the vicinity of a single-atom quantum point contact (QPC). A vibration mode localized at the single Ag adatom on the Ag(111) surface is resolved in the ILS spectrum, resulting from tip-enhanced Raman scattering (TERS) by the atomically confined plasmonic field in the STM junction. Furthermore, we trace how TERS from the single adatom evolves as a function of the gap distance. The exceptional stability of the low-temperature STM allows to examine distinctly different electron transport regimes of the picocavity, namely, in the tunneling and QPC regimes. This measurement shows that the vibration mode localized at the adatom and its TERS intensity exhibits a sharp change upon the QPC formation, indicating that the atomic-level structure has a crucial impact on the plasmonic properties. To gain microscopic insights into picocavity optomechanics, we scrutinize the structure and plasmonic field in the STM junction using time-dependent density functional theory. The simulations reveal that atomic-scale structural relaxation at the single-atom QPC results in a discrete change of the plasmonic field strength, volume, and distribution as well as the vibration mode localized at the single atom. These findings give a qualitative explanation for the experimental observations. Furthermore, we demonstrate that strong ILS is a characteristic feature of QPC by continuously forming, breaking, and reforming the atomic contact and how the plasmonic resonance evolves throughout the nontunneling, tunneling, and QPC regimes.

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Language(s): eng - English
 Dates: 2023-01-092023-05-052023-05-152023-06-13
 Publication Status: Issued
 Pages: 9
 Publishing info: -
 Table of Contents: -
 Rev. Type: Peer
 Identifiers: DOI: 10.1021/acsnano.3c00261
arXiv: 2312.06339
 Degree: -

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Project name : -
Grant ID : 895747
Funding program : Horizon 2020 (H2020)
Funding organization : European Commission (EC)
Project name : The authors thank Adnan Hammud for providing the Ag tips fabricated by using focused ion beam and Yair Litman for the geometries of the Ag tips used for the simulations. T.K. acknowledges the support from the JST FOREST Program (Grant Number JPMJFR201J, Japan) and the Grants-in-Aid for Scientific Research (JSPS KAKENHI Grant Number 19K24684) from the Ministry of Education, Culture, Sports, Science, and Technology of Japan. F.B. acknowledges financial support from the European Union’s Horizon 2020 research and innovation programme under the Marie Skłodowska-Curie grant agreement no. 895747 (NanoLightQD).
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Title: ACS Nano
  Abbreviation : ACS Nano
Source Genre: Journal
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Publ. Info: Washington, DC : American Chemical Society
Pages: - Volume / Issue: 17 (11) Sequence Number: - Start / End Page: 10172 - 10180 Identifier: ISSN: 1936-0851
CoNE: https://pure.mpg.de/cone/journals/resource/1936-0851