Gas phase vibrational spectroscopy of cold (TiO2)n− (n = 3–8) clusters

Abstract

We report infrared photodissociation (IRPD) spectra for the D2-tagged titanium oxide cluster anions (TiO2)n− with n = 3–8 in the spectral region from 450 to 1200 cm−1. The IRPD spectra are interpreted with the aid of harmonic spectra from BP86/6-311+G* density functional theory calculations of energetically low-lying isomers. We conclusively assign the IRPD spectra of the n = 3 and n = 6 clusters to global minimum energy structures with Cs and C2 symmetry, respectively. The vibrational spectra of the n = 4 and n = 7 clusters can be attributed to contributions of at most two low-lying structures. While our calculations indicate that the n = 5 and n = 8 clusters have many more low-lying isomers than the other clusters, the dominant contributions to their spectra can be assigned to the lowest energy structures. Through comparison between the calculated and experimental spectra, we can draw conclusions about the size-dependent evolution of the properties of (TiO2)n− clusters, and on their potential utility as model systems for catalysis on a bulk TiO2 surface.

Document Details

Document Type
Pub Defense Publication
Publication Date
Mar 28, 2016
Source ID
10.1063/1.4942194

Entities

People

  • Daniel Neumark
  • Knut R Asmis
  • Marissa L Weichman
  • Matias R. Fagiani
  • Sandy Gewinner
  • Sreekanta Debnath
  • Wieland Schöllkopf
  • Xiaowei Song

Organizations

  • Air Force Office of Scientific Research
  • German Research Foundation
  • Lawrence Berkeley National Laboratory
  • Leipzig University
  • University of California

Tags

Fields of Study

  • Physics

Readers

  • Atmospheric Science / Meteorology, specifically Wind Wave Turbulence.
  • Molecular Photonics/Laser Physics
  • Quantum Chemistry