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  High-resolution vibronic spectroscopy of a single molecule embedded in a crystal

Zirkelbach, J., Mirzaei, M., Deperasińska, I., Kozankiewicz, B., Gürlek, B., Shkarin, A., et al. (2022). High-resolution vibronic spectroscopy of a single molecule embedded in a crystal. The Journal of Chemical Physics, 156: 104301. doi:10.1063/5.0081297.

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 Creators:
Zirkelbach, Johannes1, Author           
Mirzaei, Masoud1, Author           
Deperasińska, Irena2, Author
Kozankiewicz, Boleslaw2, Author
Gürlek, Burak1, Author           
Shkarin, Alexey1, Author           
Utikal, Tobias1, Author           
Götzinger, Stephan1, Author           
Sandoghdar, Vahid1, 3, Author           
Affiliations:
1Sandoghdar Division, Max Planck Institute for the Science of Light, Max Planck Society, ou_2364722              
2Institute of Physics, Polish Academy of Sciences , Al. Lotników 32/46, 02-668 Warsaw, Poland, ou_persistent22              
3Sandoghdar Division, Max-Planck-Zentrum für Physik und Medizin, Max Planck Institute for the Science of Light, Max Planck Society, ou_3596674              

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 Abstract: Vibrational levels of the electronic ground states in dye molecules have not been previously explored at a high resolution in solid matrices. We present new spectroscopic measurements on single polycyclic aromatic molecules of dibenzoterrylene embedded in an organic crystal made of para-dichlorobenzene. To do this, we use narrow-band continuous-wave lasers and combine spectroscopy methods based on fluorescence excitation and stimulated emission depletion to assess individual vibrational linewidths in the electronic ground state at a resolution of ∼30 MHz dictated by the linewidth of the electronic excited state. In this fashion, we identify several exceptionally narrow vibronic levels with linewidths down to values around 2 GHz. Additionally, we sample the distribution of vibronic wavenumbers, relaxation rates, and Franck–Condon factors, in both the electronic ground and excited states for a handful of individual molecules. We discuss various noteworthy experimental findings and compare them with the outcome of density functional theory calculations. The highly detailed vibronic spectra obtained in our work pave the way for studying the nanoscopic local environment of single molecules. The approach also provides an improved understanding of the vibrational relaxation mechanisms in the electronic ground state, which may help create long-lived vibrational states for applications in quantum technology.

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Language(s): eng - English
 Dates: 2022-03-08
 Publication Status: Issued
 Pages: -
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 Identifiers: DOI: 10.1063/5.0081297
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Title: The Journal of Chemical Physics
  Abbreviation : J. Chem. Phys.
Source Genre: Journal
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Publ. Info: Woodbury, N.Y. : American Institute of Physics
Pages: - Volume / Issue: 156 Sequence Number: 104301 Start / End Page: - Identifier: ISSN: 0021-9606
CoNE: https://pure.mpg.de/cone/journals/resource/954922836226