The browser you are using is not supported by this website. All versions of Internet Explorer are no longer supported, either by us or Microsoft (read more here: https://www.microsoft.com/en-us/microsoft-365/windows/end-of-ie-support).

Please use a modern browser to fully experience our website, such as the newest versions of Edge, Chrome, Firefox or Safari etc.

Dmitry Baranov. Portrait.

Dmitry Baranov

Associate senior lecturer

Dmitry Baranov. Portrait.

Relations between absorption, emission, and excited state chemical potentials from nanocrystal 2D spectra

Author

  • Jisu Ryu
  • Samuel D. Park
  • Dmitry Baranov
  • Iva Rreza
  • Jonathan S. Owen
  • David M. Jonas

Summary, in English

For quantum-confined nanomaterials, size dispersion causes a static broadening of spectra that has been difficult to measure and invalidates all-optical methods for determining the maximum photovoltage that an excited state can generate. Using femtosecond two-dimensional (2D) spectroscopy to separate size dispersion broadening of absorption and emission spectra allows a test of single-molecule generalized Einstein relations between such spectra for colloidal PbS quantum dots. We show that 2D spectra and these relations determine the thermodynamic standard chemical potential difference between the lowest excited and ground electronic states, which gives the maximum photovoltage. Further, we find that the static line broadening from many slightly different quantum dot structures allows single-molecule generalized Einstein relations to determine the average single-molecule linewidth from Stokes' frequency shift between ensemble absorption and emission spectra.

Publishing year

2021-05

Language

English

Publication/Series

Science Advances

Volume

7

Issue

22

Document type

Journal article

Publisher

American Association for the Advancement of Science (AAAS)

Status

Published

ISBN/ISSN/Other

  • ISSN: 2375-2548