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Evidence for topological defects in a photoinduced phase transition

Authors :
Anshul Kogar
Pablo Jarillo-Herrero
Ian R. Fisher
Ya-Qing Bie
A.V. Rozhkov
Philip Walmsley
Boris V. Fine
Nuh Gedik
Timm Rohwer
Edoardo Baldini
Emre Ergecen
Hengyun Zhou
Byron Freelon
Pavel E. Dolgirev
Joshua Straquadine
Edbert J. Sie
Changmin Lee
Alfred Zong
Mehmet Yilmaz
Source :
Nature Physics. 15:27-31
Publication Year :
2018
Publisher :
Springer Science and Business Media LLC, 2018.

Abstract

Upon excitation with an intense laser pulse, a symmetry-broken ground state can undergo a non-equilibrium phase transition through pathways different from those in thermal equilibrium. The mechanism underlying these photoinduced phase transitions has long been researched in the study of condensed matter systems1, but many details in this ultrafast, non-adiabatic regime still remain to be clarified. To this end, we investigate the light-induced melting of a unidirectional charge density wave (CDW) in LaTe3. Using a suite of time-resolved probes, we independently track the amplitude and phase dynamics of the CDW. We find that a fast (approximately 1 picosecond) recovery of the CDW amplitude is followed by a slower re-establishment of phase coherence. This longer timescale is dictated by the presence of topological defects: long-range order is inhibited and is only restored when the defects annihilate. Our results provide a framework for understanding other photoinduced phase transitions by identifying the generation of defects as a governing mechanism. Three different ultrafast probes investigate a non-adiabatic phase transition and find substantial evidence of topological defects inhibiting the reformation of the equilibrium phase.

Details

ISSN :
17452481 and 17452473
Volume :
15
Database :
OpenAIRE
Journal :
Nature Physics
Accession number :
edsair.doi...........578bfd383f3f442914b522bf68bf01df
Full Text :
https://doi.org/10.1038/s41567-018-0311-9