Coherent topological defect dynamics and collective modes in superconductors and electronic crystals
arXiv:1304.6968 · doi:10.1088/0953-8984/25/40/404206
Abstract
The control of condensed matter systems out of equilibrium by laser pulses allows us to investigate the system trajectories through symmetry-breaking phase transitions. Thus the evolution of both collective modes and single particle excitations can be followed through diverse phase transitions with femtosecond resolution. Here we present experimental observations of the order parameter trajectory in the normal-superconductor transition and charge-density wave ordering transitions. Of particular interest is the coherent evolution of topological defects forming during the transition via the Kibble-Zurek mechanism, which appears to be measurable in optical pump probe experiments. Experiments on CDW systems reveal some new phenomena, such as coherent oscillations of the order parameter, the creation and emission of dispersive amplitudon modes upon the annihilation of topological defects, and mixing with weakly coupled finite-frequency (massive) bosons.
References in corpus (9)
- Spontaneous vortices in the formation of Bose-Einstein condensates
- Single vortex-antivortex pair in an exciton polariton condensate
- Coherent dynamics of macroscopic electronic order through a symmetry-breaking transition
- Controlled vaporization of the superconducting condensate in cuprate superconductors sheds light on the pairing boson
- Electron relaxation in metals: Theory and exact analytical solutions
- Single-particle and collective mode couplings associated with 1- and 2-directional electronic ordering in metallic RTe (R = Ho, Dy, Tb)
- Incoherent topological defect recombination dynamics in TbTe_3
- Strain-induced enhancement of the electron energy relaxation in strongly correlated superconductors
- Multiple phase slips phenomena in mesoscopic superconducting rings