Theory of Resonant Raman Scattering in One Dimensional Electronic systems
D.-W. Wang, A. J. Millis, S. Das Sarma

TL;DR
This paper develops a theoretical framework for resonant Raman scattering in one-dimensional electronic systems modeled as Luttinger liquids, revealing characteristic spectral features and power-law behaviors near resonance.
Contribution
It provides the first closed-form analytic expressions for Raman cross sections in Luttinger liquids, highlighting the importance of excitonic effects and non-Fermi liquid behavior.
Findings
Double-peak structure with spin and plasmon excitations
Power-law dependence of Raman intensity on laser frequency
Resonance saturation of intensity ratios
Abstract
A theory of resonant Raman scattering spectroscopy of one dimensional electronic systems is developed on the assumptions that (i) the excitations of the one dimensional electronic system are described by the Luttinger Liquid model, (ii) Raman processes involve virtual excitations from a filled valence band to an empty state of the one dimensional electronic system and (iii) excitonic interactions between the valence and conduction bands may be neglected. Closed form analytic expressions are obtained for the Raman scattering cross sections, and are evaluated analytically and numerically for scattering in the polarized channel, revealing a "double-peak" structure with the lower peak involving multispinon excitations with total spin S=0 and the higher peak being the conventional plasmon. A key feature of our results is a nontrivial power law dependence, involving the Luttinger Liquid…
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