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Ultrafast electron localization in the EuNi2(Si0.21Ge0.79)(2) correlated metal

Authors :
Mardegan, José R.L.
Zerdane, Serhane
Mancini, Giulia
Esposito, Vincent
Rouxel, Jérémy R.
Mankowsky, Roman
Svetina, Cristian
Gurung, Namrata
Parchenko, Sergii
Porer, Michael
Burganov, Bulat
Deng, Yunpei
Beaud, Paul
Ingold, Gerhard
Pedrini, Bill
Arrell, Christopher
Erny, Christian
Dax, Andreas
Lemke, Henrik
Decker, Martin
Ortiz Hernández, Nazaret
Milne, Chris
Smolentsev, Grigory
Maurel, Laura
Johnson, Steven L.
Mitsuda, Akihiro
Wada, Hirofumi
Yokoyama, Yuichi
Wadati, Hiroki
Staub, Urs
Publisher :
ETH Zurich

Abstract

Ultrafast electron delocalization induced by a femtosecond laser pulse is a well-known process in which electrons are ejected from the ions within the laser pulse duration. However, very little is known about the speed of electron localization out of an electron gas in correlated metals, i.e., the capture of an electron by an ion. Here, we demonstrate by means of pump-probe x-ray techniques across the Eu L-3 absorption edge that an electron localization process in the EuNi2(Si0.27Ge0.79)(2) intermetallic material occurs within a few hundred femtoseconds after the optical excitation. Spectroscopy and diffraction data collected simultaneously at low temperature and for various laser fluences show that the localization dynamics process is much faster than the thermal expansion of the unit cell along the c direction which occurs within picoseconds. Nevertheless, this latter process is still much slower than pure electronic effects, such as screening, and the subpicosecond timescale indicates an optical phonon driven origin. In addition, comparing the laser fluence dependence of the electronic response with that found in other intermediate 4f valence materials, we suggest that the electron localization process observed in this Eu-based correlated metal is mainly related to changes in the 4f hybridization. The observed ultrafast electron localization process sparks fundamental questions for our understanding of electron correlations and their coupling to the lattice.<br />Physical Review Research, 3 (3)<br />ISSN:2643-1564

Subjects

Subjects :
Physics::Optics
3. Good health

Details

Language :
English
ISSN :
26431564
Database :
OpenAIRE
Accession number :
edsair.doi...........31f48c2d4c13cbb9ec90a7f1b87a318e