TY - JOUR
T1 - Polaronic conductivity in the photoinduced phase of 1T-TaS2
AU - Dean, Nicky
AU - Petersen, Jesse
AU - Fausti, Daniele
AU - Tobey, Ra'anan I.
AU - Kaiser, Stefan
AU - Gasparov, Lev
AU - Berger, Helmuth
AU - Cavalleri, Andrea
N1 - Autor: Dean, N. et al.; Genre: Zeitschriftenartikel; Im Druck veröffentlicht: 2011-01-07; Open Access; Keywords: PACS numbers: 71.45.Lr, 63.20.kd, 73.20.Mf, 78.47.jg; Titel: Polaronic Conductivity in the Photoinduced Phase of 1T−TaS2
PY - 2011/1/4
Y1 - 2011/1/4
N2 - The transient optical conductivity of photoexcited 1𝑇−TaS2 is determined over a three-order-of-magnitude frequency range. Prompt collapse and recovery of the Mott gap is observed. However, we find important differences between this transient metallic state and that seen across the thermally driven insulator-metal transition. Suppressed low-frequency conductivity, Fano phonon line shapes, and a midinfrared absorption band point to polaronic transport. This is explained by noting that the photoinduced metallic state of 1𝑇−TaS2 is one in which the Mott gap is melted but the lattice retains its low-temperature symmetry, a regime only accessible by photodoping.
AB - The transient optical conductivity of photoexcited 1𝑇−TaS2 is determined over a three-order-of-magnitude frequency range. Prompt collapse and recovery of the Mott gap is observed. However, we find important differences between this transient metallic state and that seen across the thermally driven insulator-metal transition. Suppressed low-frequency conductivity, Fano phonon line shapes, and a midinfrared absorption band point to polaronic transport. This is explained by noting that the photoinduced metallic state of 1𝑇−TaS2 is one in which the Mott gap is melted but the lattice retains its low-temperature symmetry, a regime only accessible by photodoping.
UR - https://www.scopus.com/pages/publications/78650982370
UR - https://www.scopus.com/pages/publications/78650982370#tab=citedBy
U2 - 10.1103/PhysRevLett.106.016401
DO - 10.1103/PhysRevLett.106.016401
M3 - Article
SN - 1079-7114
VL - 106
JO - Physical Review Letters
JF - Physical Review Letters
IS - 1
M1 - 016401
ER -