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Twisting Anderson pseudospins with light: Quench dynamics in terahertz-pumped BCS superconductors

Yang-Zhi Chou, Yunxiang Liao, and Matthew S. Foster
Phys. Rev. B 95, 104507 – Published 8 March 2017

Abstract

We study the preparation (pump) and the detection (probe) of far-from-equilibrium BCS superconductor dynamics in THz pump-probe experiments. In a recent experiment [R. Matsunaga, Y. I. Hamada, K. Makise, Y. Uzawa, H. Terai, Z. Wang, and R. Shimano, Phys. Rev. Lett. 111, 057002 (2013)], an intense monocycle THz pulse with center frequency ωΔ was injected into a superconductor with BCS gap Δ; the subsequent postpump evolution was detected via the optical conductivity. It was argued that nonlinear coupling of the pump to the Anderson pseudospins of the superconductor induces coherent dynamics of the Higgs (amplitude) mode Δ(t). We validate this picture in a two-dimensional BCS model with a combination of exact numerics and the Lax reduction method, and we compute the nonequilibrium phase diagram as a function of the pump intensity. The main effect of the pump is to scramble the orientations of Anderson pseudospins along the Fermi surface by twisting them in the xy plane. We show that more intense pump pulses can induce a far-from-equilibrium phase of gapless superconductivity (“phase I”), originally predicted in the context of interaction quenches in ultracold atoms. We show that the THz pump method can reach phase I at much lower energy densities than an interaction quench, and we demonstrate that Lax reduction (tied to the integrability of the BCS Hamiltonian) provides a general quantitative tool for computing coherent BCS dynamics. We also calculate the Mattis-Bardeen optical conductivity for the nonequilibrium states discussed here.

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  • Received 6 December 2016
  • Revised 10 February 2017

DOI:https://doi.org/10.1103/PhysRevB.95.104507

©2017 American Physical Society

Physics Subject Headings (PhySH)

  1. Physical Systems
  1. Techniques
Condensed Matter, Materials & Applied PhysicsStatistical Physics & Thermodynamics

Authors & Affiliations

Yang-Zhi Chou1,2,*, Yunxiang Liao1, and Matthew S. Foster1,3

  • 1Department of Physics and Astronomy, Rice University, Houston, Texas 77005, USA
  • 2Department of Physics and Center for Theoretical Quantum Matter, University of Colorado Boulder, Boulder, Colorado 80309, USA
  • 3Rice Center for Quantum Materials, Rice University, Houston, Texas 77005, USA

  • *yangzhi.chou@colorado.edu

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Issue

Vol. 95, Iss. 10 — 1 March 2017

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