Lattice dynamics of the excitonic insulator Ta$_2$Ni(Se$_{1-x}$S$_x$)$_5$
Mai Ye, Pavel A. Volkov, Himanshu Lohani, Irena Feldman, Minsung Kim,, Amit Kanigel, and Girsh Blumberg

TL;DR
This study investigates the lattice dynamics and exciton-phonon interactions in the Ta$_2$Ni(Se$_{1-x}$S$_x$)$_5$ family, revealing how sulfur substitution influences phase transitions, phonon behavior, and excitonic effects in this excitonic insulator system.
Contribution
It provides a detailed Raman spectroscopy analysis of phonon modes, their temperature and composition dependence, and introduces an extended Fano model to quantify exciton-phonon interactions.
Findings
Tc decreases from 328 K to 120 K with sulfur substitution.
Lattice distortion magnitude diminishes as sulfur concentration increases.
Fano interference affects phonon lineshapes in the semimetallic state.
Abstract
Recently, we employed electronic polarization-resolved Raman spectroscopy to reveal the strongly correlated excitonic insulator (EI) nature of Ta2NiSe5, Volkov et al. [arXiv:2007.07344], and also showed that for TaNi(SeS) alloys the critical excitonic fluctuations diminish with sulfur concentration x exposing a cooperating lattice instability that takes over for large x, Volkov et al. [arXiv:2104.07032]. Here we focus on the lattice dynamics of this EI family. We identify all Raman-active optical phonons of fully symmetric and ac-quadrupole-like symmetries and study their evolution with temperature and sulfur concentration. We demonstrate the change of selection rules at temperatures below the orthorhombic-to-monoclinic transition at Tc(x) that is related to the EI phase. We find that Tc(x) decrease monotonically from 328 K for Ta2NiSe5 to 120 K for Ta2NiS5 and that…
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