| Literature DB >> 27157532 |
James Lourembam1, Amar Srivastava2,3, Chan La-O-Vorakiat4,5,6, Liang Cheng1, T Venkatesan2,3,7,8,9, Elbert E M Chia1.
Abstract
Ultrafast optical studies have been performed on epitaxial films of the novel B-phase of vanadium dioxide using temperature-dependent optical pump-probe technique. Signature of temperature-driven metal-to-insulator transition was distinctly observed in the ultrafast dynamics - the insulating phase showed two characteristic electronic relaxation times while the metallic phase showed only one. Beyond a threshold value of the pump fluence, the insulating state collapses into a 'metallic-like' phase which can be further subdivided into two regimes according to the lengths of the fast characteristic time. The first regime can be explained by lattice heating due to the optical pump; the other cannot be accounted by simple lattice heating effects alone, and thus offers evidence for a true photoinduced phase transition.Entities:
Year: 2016 PMID: 27157532 PMCID: PMC4860617 DOI: 10.1038/srep25538
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) Schematic diagram of the VO2(B) band structure shown along with the Fermi level at the metallic phase (300 K) and the insulating phase (100 K). (b) Temperature-dependent time evolution of transient reflectivity ΔR/R spectra for VO2(B) films after photoexcitation by a laser fluence of ~1.15 mJ/cm2. Semi-log plot of relative reflectivity fitted with the bi-exponential model for a pump fluence of ~1.15 mJ/cm2 at temperatures — (c) 100 K and (d) 300 K. The arrows represent the delay where the transient reflectivity attains its maximum value, t.
Figure 2Values of A, t and τ1 for VO2(B) film as a function of (a–c). Temperature, and (d–f ). Fluence. A and τ1 were determined from the bi-exponential fitting results, and t represents the time delay at the maximum value of ΔR/R. The solid black lines in (a,d) are references for A = 0. The value of F at 150 K is indicated by the black arrow in (d).
Figure 3Transient reflectivity at various temperature points for pump fluences (a) ~1.8 mJ/cm2 and (b) ~3.45 mJ/cm2 for VO2(B) thin film. (c,d) Shows fluence-dependent transient reflectivity at fixed temperatures 150 K and 300 K respectively.
Figure 4Summary of the dynamics study of VO2(B) as represented by the phase diagram.
The red and the blue shaded regions represent the metallic state and the insulating states respectively. The metallic phase is further subdivided into two regions — (I) thermally induced exhibiting longer τ1 (light blue and red streaks) and (II) photoinduced (coloured red) where τ1 ≤ 3 ps.