| Literature DB >> 25062214 |
T Huber1, S O Mariager2, A Ferrer3, H Schäfer4, J A Johnson2, S Grübel2, A Lübcke5, L Huber1, T Kubacka1, C Dornes1, C Laulhe6, S Ravy7, G Ingold2, P Beaud2, J Demsar8, S L Johnson1.
Abstract
Using femtosecond time-resolved x-ray diffraction, we directly monitor the coherent lattice dynamics through an ultrafast charge-density-wave-to-metal transition in the prototypical Peierls system K(0.3)MoO(3) over a wide range of relevant excitation fluences. While in the low fluence regime we directly follow the structural dynamics associated with the collective amplitude mode; for fluences above the melting threshold of the electronic density modulation we observe a transient recovery of the periodic lattice distortion. We can describe these structural dynamics as a motion along the coordinate of the Peierls distortion triggered by the prompt collapse of electronic order after photoexcitation. The results indicate that the dynamics of a structural symmetry-breaking transition are determined by a high-symmetry excited state potential energy surface distinct from that of the initial low-temperature state.Entities:
Year: 2014 PMID: 25062214 DOI: 10.1103/PhysRevLett.113.026401
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161