Skip to main navigation Skip to search Skip to main content

Subpicosecond Spectroscopic Ellipsometry of the Photoinduced Phase Transition in VO2 Thin Films

  • Yael Gutiérrez
  • , Saúl Vázquez-Miranda
  • , Shirly Espinoza
  • , Krishna Khakurel
  • , Mateusz Rebarz
  • , Zhen Zhang
  • , José M. Saiz
  • , Shriram Ramanathan
  • , Sébastien Cueff
  • Universidad de Cantabria
  • National Research Council of Italy
  • The Extreme Light Infrastructure
  • Purdue University
  • CNRS UMR 5270

Research output: Contribution to journalArticlepeer-review

14 Scopus citations

Abstract

We report the first application of broadband time-resolved pump-probe ellipsometry to study the ultrafast dynamics of the photoinduced insulator-to-metal transition (IMT) in vanadium dioxide (VO2) thin films driven by 35 fs laser pulses. This novel technique enables the direct measurement of the time-resolved evolution of the complex pseudodielectric function of VO2 during the IMT. We have identified distinct thermal and nonthermal dynamics in the photoinduced IMT, which critically depends on the pump wavelength and fluence, while providing a detailed temporal and spectral phase map. A comparison of the pseudodielectric function of the VO2 thin film during thermally and photoinduced phase transitions reveals that the primary differences in the IMT pathways occur within the first picosecond after the pump, driven by nonequilibrium dynamics in this ultrafast time scale. The ultrafast spectroscopic ellipsometry introduced in this work offers a complementary probe to study phase changes in condensed matter and emerging photonic device materials.

Original languageEnglish
Pages (from-to)4883-4893
Number of pages11
JournalACS Photonics
Volume11
Issue number11
DOIs
StatePublished - 20 Nov 2024
Externally publishedYes

Keywords

  • insulator-to-metal transition
  • pump−probe spectroscopy
  • spectroscopic ellipsometry
  • ultrafast
  • vanadium dioxide

Fingerprint

Dive into the research topics of 'Subpicosecond Spectroscopic Ellipsometry of the Photoinduced Phase Transition in VO2 Thin Films'. Together they form a unique fingerprint.

Cite this