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Critical excitonic mode interacting with phonons in excitonic insulator Ta<sub>2</sub>Ni(Se<sub>1−x</sub>S<sub>x</sub>)<sub>5</sub>

ORAL · Invited

Abstract

Excitonic insulator is a quantum coherent phase resulting from formation of a macroscopic population of electron-hole pairs. For a semimetal with narrow overlap of the conduction and valence bands, a finite exciton binding energy could lead to excitonic instability. Candidate material Ta2NiSe5 shows a second-order structural phase transition at Tc=328K, with two mirror symmetries broken.

Using polarization-resolved Raman spectroscopy, we demonstrate that Ta2NiSe5 is an excitonic insulator below Tc [npj Quantum Mater. 6, 52 (2021)]. The order parameter of the structural transition is of quadrupolar symmetry. In this symmetry channel, we observe strongly coupled excitonic and optical phonon modes at low energy. The resulting Fano lineshape can be decomposed to reveal an overdamped exciton mode that exhibits critical softening on cooling towards Tc. In contrast, the energy of the bare optical phonons increases on cooling, which indicates that the phase transition does not result from lattice instability. We conclude that the transition is driven by the critical excitonic mode, and the transition temperature is enhanced by the coupling of this mode to the lattice modes of the same symmetry.

We further show that for Ta2Ni(Se1−xSx)5 the excitonic instability, the transition temperature Tc, and the magnitude of the structural change across Tc are suppressed with increasing sulfur content x [PRB 104, 045102 (2021); arXiv 2104.07032 (2021)]. The Fano lineshape at low energy persists up to x=0.67, up to which point Ta2Ni(Se1−xSx)5 has a semimetallic high-temperature phase. However, Ta2NiS5 is a semiconductor with more than 0.3 eV gap; the asymmetric lineshape is absent because the exciton mode appears at high energy. As both the exciton and optical phonons of Ta2NiS5 do not show critical softening, we conclude that its phase transition is driven by ferroelastic instability.

Publication: Critical charge fluctuations and emergent coherence in a strongly correlated excitonic insulator, P. A. Volkov, Mai Ye, H. Lohani, I. Feldman, A. Kanigel, G. Blumberg, npj Quantum Mater. 6, 52 (2021)<br><br>Lattice dynamics of the excitonic insulator Ta2Ni(Se1−xSx)5, Mai Ye, Pavel A. Volkov, Himanshu Lohani, Irena Feldman, Minsung Kim, Amit Kanigel, Girsh Blumberg, Phys. Rev. B 104, 045102 (2021)<br><br>Failed excitonic quantum phase transition in Ta2Ni(Se1−xSx)5, Pavel A. Volkov, Mai Ye, Himanshu Lohani, Irena Feldman, Amit Kanigel, Girsh Blumberg, arXiv:2104.07032 (2021)

Presenters

  • Mai Ye

    Rutgers University

Authors

  • Mai Ye

    Rutgers University

  • Pavel A Volkov

    Rutgers University

  • Himanshu Lohani

    Technion, Israel, Technion-Israel Institute of Technology

  • Irena Feldman

    Technion - Israel Institute of Technology, Technion, Israel, Technion-Israel Institute of Technology

  • Amit Kanigel

    Technion, Israel, Technion - Israel Institute of Technolog

  • Girsh E Blumberg

    Rutgers University, New Brunswick