Microscopic phase-transition theory of charge density waves: revealing hidden crossovers of phason and amplitudon

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Main Authors: Yang, F., Chen, L. Q.
Format: Preprint
Published: 2025
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author Yang, F.
Chen, L. Q.
author_facet Yang, F.
Chen, L. Q.
contents We develop a self-consistent phase-transition theory of charge density waves (CDWs), starting from a purely microscopic model. Specifically, we derive a microscopic CDW gap equation $|Δ_0(T)|$, taking into account of thermal phase fluctuations (i.e., thermal excitation of phason) and their influence on CDW pinning (i.e., the phason mass) and CDW gap. We demonstrate that as temperature increases from zero, the phason gradually softens, leading to a thermal depinning crossover (where the phason becomes gapless) at $T_d$ and a subsequent first-order CDW phase transition at $T_c>T_d$. The predicted values of $T_d$, $T_c$ as well as the large ratio of $|Δ_0(T=0)|/(k_BT_c)$ for the quasi-1D CDW material (TaSe$_4$)$_2$I show quantitative agreements with experimental measurements and explain many of the previously observed key thermodynamic features and unresolved issues in literature. To further validate the theory, we calculate the energy gap of CDW amplitudon and its lifetime, and reveal a crossover of amplitudon from a lightly damped to a heavily damped excitation during pinning-depinning crossover while its energy gap is nearly unchanged throughout the entire CDW phase. This finding quantitatively captures and explains the recently observed coherent signal in ultrafast THz emission spectroscopy on (TaSe$_4$)$_2$I.
format Preprint
id arxiv_https___arxiv_org_abs_2505_05025
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Microscopic phase-transition theory of charge density waves: revealing hidden crossovers of phason and amplitudon
Yang, F.
Chen, L. Q.
Strongly Correlated Electrons
Materials Science
We develop a self-consistent phase-transition theory of charge density waves (CDWs), starting from a purely microscopic model. Specifically, we derive a microscopic CDW gap equation $|Δ_0(T)|$, taking into account of thermal phase fluctuations (i.e., thermal excitation of phason) and their influence on CDW pinning (i.e., the phason mass) and CDW gap. We demonstrate that as temperature increases from zero, the phason gradually softens, leading to a thermal depinning crossover (where the phason becomes gapless) at $T_d$ and a subsequent first-order CDW phase transition at $T_c>T_d$. The predicted values of $T_d$, $T_c$ as well as the large ratio of $|Δ_0(T=0)|/(k_BT_c)$ for the quasi-1D CDW material (TaSe$_4$)$_2$I show quantitative agreements with experimental measurements and explain many of the previously observed key thermodynamic features and unresolved issues in literature. To further validate the theory, we calculate the energy gap of CDW amplitudon and its lifetime, and reveal a crossover of amplitudon from a lightly damped to a heavily damped excitation during pinning-depinning crossover while its energy gap is nearly unchanged throughout the entire CDW phase. This finding quantitatively captures and explains the recently observed coherent signal in ultrafast THz emission spectroscopy on (TaSe$_4$)$_2$I.
title Microscopic phase-transition theory of charge density waves: revealing hidden crossovers of phason and amplitudon
topic Strongly Correlated Electrons
Materials Science
url https://arxiv.org/abs/2505.05025