Tracing the dynamics of superconducting order via transient terahertz third-harmonic generation

Author:

Kim Min-Jae123ORCID,Kovalev Sergey4ORCID,Udina Mattia5,Haenel Rafael26ORCID,Kim Gideok2,Puviani Matteo2ORCID,Cristiani Georg2ORCID,Ilyakov Igor4,de Oliveira Thales V. A. G.4ORCID,Ponomaryov Alexey4ORCID,Deinert Jan-Christoph4ORCID,Logvenov Gennady2,Keimer Bernhard2ORCID,Manske Dirk2ORCID,Benfatto Lara5ORCID,Kaiser Stefan123ORCID

Affiliation:

1. Institute of Solid State and Materials Physics, TUD Dresden University of Technology, 01069 Dresden, Germany.

2. Max Planck Institute for Solid State Research, 70569 Stuttgart, Germany.

3. 4th Physics Institute and Research Center SCoPE, University of Stuttgart, 70569 Stuttgart, Germany.

4. Helmholtz-Zentrum Dresden-Rossendorf, 01328 Dresden, Germany.

5. Department of Physics and ISC-CNR, “Sapienza” University of Rome, 00185 Rome, Italy.

6. Department of Physics and Astronomy & Stewart Blusson Quantum Matter Institute, University of British Columbia, Vancouver, BC V6T 1Z4, Canada.

Abstract

Ultrafast optical control of quantum systems is an emerging field of physics. In particular, the possibility of light-driven superconductivity has attracted much of attention. To identify nonequilibrium superconductivity, it is necessary to measure fingerprints of superconductivity on ultrafast timescales. Recently, nonlinear THz third-harmonic generation (THG) was shown to directly probe the collective degrees of freedoms of the superconducting condensate, including the Higgs mode. Here, we extend this idea to light-driven nonequilibrium states in superconducting La 2- x Sr x CuO 4 , establishing an optical pump–THz–THG drive protocol to access the transient superconducting order-parameter quench and recovering on few-picosecond timescales. We show in particular the ability of two-dimensional TH spectroscopy to disentangle the effects of optically excited quasiparticles from the pure order-parameter dynamics, which are unavoidably mixed in the pump-driven linear THz response. Benchmarking the gap dynamics to existing experiments shows the ability of driven THG spectroscopy to overcome these limitations in ordinary pump-probe protocols.

Publisher

American Association for the Advancement of Science (AAAS)

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