In search for the pairing glue in cuprates by non-equilibrium optical spectroscopy
arXiv:1303.2893 · doi:10.1088/1742-6596/449/1/012003
Abstract
In strongly correlated materials the electronic and optical properties are significantly affected by the coupling of fermionic quasiparticles to different degrees of freedom, such as lattice vibrations and bosonic excitations of electronic origin. Broadband ultrafast spectroscopy is emerging as the premier technique to unravel the subtle interplay between quasiparticles and electronic or phononic collective excitations, by their different characteristic timescales and spectral responses. By investigating the femtosecond dynamics of the optical properties of Y-Bi2212 crystals over the 0.5-2 eV energy range, we disentangle the electronic and phononic contributions to the generalized electron-boson Eliashberg function, showing that the spectral distribution of the electronic excitations, such as spin fluctuations and current loops, and the strength of their interaction with quasiparticles can account for the high critical temperature of the superconducting phase transition. Finally, we discuss how the use of this technique can be extended to the underdoped region of the phase diagram of cuprates, in which a pseudogap in the quasiparticle density of states opens. The microscopic modeling of the interaction of ultrashort light pulses with unconventional superconductors will be one of the key challenges of the next-years materials science, eventually leading to the full understanding of the role of the electronic correlations in controlling the dynamics on the femtosecond timescale.
15 pages, 5 figures, Invited manuscript for the proceedings of "Materials & Mechanisms of Superconductivity" (M2S), Washington, 2012
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Cited by in corpus (6)
- Photo-enhanced antinodal conductivity in the pseudogap state of high Tc cuprates
- Ground state of doped cuprates from first principles quantum Monte Carlo calculations
- Signatures of enhanced superconducting phase coherence through MID-IR excitation in optimally doped Y-Bi2212
- Bosonic excitations and electron pairing in an electron-doped cuprate superconductor
- Anisotropic Time-Domain Electronic Response in Cuprates
- Dynamics of superconducting pairs in the two-dimensional Hubbard model