Enhanced optical conductivity and many-body effects in strongly-driven photo-excited semi-metallic graphite
T. P. H. Sidiropoulos (),
N. Palo,
D. E. Rivas,
A. Summers,
S. Severino,
M. Reduzzi and
J. Biegert ()
Additional contact information
T. P. H. Sidiropoulos: The Barcelona Institute of Science and Technology
N. Palo: The Barcelona Institute of Science and Technology
D. E. Rivas: The Barcelona Institute of Science and Technology
A. Summers: The Barcelona Institute of Science and Technology
S. Severino: The Barcelona Institute of Science and Technology
M. Reduzzi: The Barcelona Institute of Science and Technology
J. Biegert: The Barcelona Institute of Science and Technology
Nature Communications, 2023, vol. 14, issue 1, 1-8
Abstract:
Abstract The excitation of quasi-particles near the extrema of the electronic band structure is a gateway to electronic phase transitions in condensed matter. In a many-body system, quasi-particle dynamics are strongly influenced by the electronic single-particle structure and have been extensively studied in the weak optical excitation regime. Yet, under strong optical excitation, where light fields coherently drive carriers, the dynamics of many-body interactions that can lead to new quantum phases remain largely unresolved. Here, we induce such a highly non-equilibrium many-body state through strong optical excitation of charge carriers near the van Hove singularity in graphite. We investigate the system’s evolution into a strongly-driven photo-excited state with attosecond soft X-ray core-level spectroscopy. We find an enhancement of the optical conductivity of nearly ten times the quantum conductivity and pinpoint it to carrier excitations in flat bands. This interaction regime is robust against carrier-carrier interaction with coherent optical phonons acting as an attractive force reminiscent of superconductivity. The strongly-driven non-equilibrium state is markedly different from the single-particle structure and macroscopic conductivity and is a consequence of the non-adiabatic many-body state.
Date: 2023
References: View references in EconPapers View complete reference list from CitEc
Citations:
Downloads: (external link)
https://www.nature.com/articles/s41467-023-43191-5 Abstract (text/html)
Related works:
This item may be available elsewhere in EconPapers: Search for items with the same title.
Export reference: BibTeX
RIS (EndNote, ProCite, RefMan)
HTML/Text
Persistent link: https://EconPapers.repec.org/RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-43191-5
Ordering information: This journal article can be ordered from
https://www.nature.com/ncomms/
DOI: 10.1038/s41467-023-43191-5
Access Statistics for this article
Nature Communications is currently edited by Nathalie Le Bot, Enda Bergin and Fiona Gillespie
More articles in Nature Communications from Nature
Bibliographic data for series maintained by Sonal Shukla () and Springer Nature Abstracting and Indexing ().