Low frequency Raman response near Ising-nematic quantum critical point: a memory matrix approach
Abstract
Recent Raman scattering experiments have revealed a "quasi-elastic peak" in near an Ising-nematic quantum critical point (QCP) \cite{zhang17}. Notably, the peak occurs at sub-temperature frequencies, and softens as when temperature is decreased toward the QCP, with . In this work, we present a theoretical analysis of the low-frequency Raman response using a memory matrix approach. We show that such a quasi-elastic peak is associated with the relaxation of an Ising-nematic deformation of the Fermi surface. Specifically, we find that the peak frequency is proportional to , where is the Ising-nematic thermodynamic susceptibility, and is the decay rate of the nematic deformation due to an interplay between impurity scattering and electron-electron scattering mediated by critical Ising-nematic fluctuations. We argue that the critical fluctuations play a crucial role in determining the observed temperature dependence of the frequency of the quasi-elastic peak. At frequencies larger than the temperature, we find that the Raman response is proportional to , consistently with earlier predictions \cite{klein18a}.
Keywords
Cite
@article{arxiv.2011.01818,
title = {Low frequency Raman response near Ising-nematic quantum critical point: a memory matrix approach},
author = {Xiaoyu Wang and Erez Berg},
journal= {arXiv preprint arXiv:2011.01818},
year = {2022}
}
Comments
6 pages + 5 figures