AI Article Synopsis

  • Researchers use laser spectroscopy at very low temperatures (2 K) to study single dibenzoterrylene (DBT) molecules in tiny anthracene crystals made through a special printing technique.
  • They find that the light emitted by these single molecules has very sharp transitions, almost as clear as those seen in bulk materials, indicating high-quality optical properties.
  • By taking super-resolution images and changing the polarization of the light, they can measure the size and orientation of the crystals, which is important for future applications involving precisely placed quantum emitters.

Article Abstract

We perform laser spectroscopy at liquid helium temperatures ( = 2 K) to investigate single dibenzoterrylene (DBT) molecules doped in anthracene crystals of nanoscopic height fabricated by electrohydrodynamic dripping. Using high-resolution fluorescence excitation spectroscopy, we show that zero-phonon lines of single molecules in printed nanocrystals are nearly as narrow as the Fourier-limited transitions observed for the same guest-host system in the bulk. Moreover, the spectral instabilities are comparable to or less than one line width. By recording super-resolution images of DBT molecules and varying the polarization of the excitation beam, we determine the dimensions of the printed crystals and the orientation of the crystals' axes. Electrohydrodynamic printing of organic nano- and microcrystals is of interest for a series of applications, where controlled positioning of quantum emitters with narrow optical transitions is desirable.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11342377PMC
http://dx.doi.org/10.1021/acsnano.4c02003DOI Listing

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