English

Fluctuation-driven multi-step charge density wave transition in monolayer TiSe$_2$

Materials Science 2026-04-23 v1

Abstract

The exact microscopic origin, symmetry, and thermal melting mechanism of the charge density wave (CDW) phase in TiSe2_{2} remain a subject of intense debate, particularly regarding the presence of chiral structural order and a multi-step phase transition. Here, we resolve the finite-temperature structural dynamics of the monolayer TiSe2_{2} using large-scale molecular dynamics simulations driven by an accurate, first-principles-trained machine-learning interatomic potential. We demonstrate that the CDW melting deviates from a conventional second-order phase transition, while it undergoes a two-step melting process characterised by an extended fluctuation regime between T200T^{\ast}\approx200 K and TCDW250T_{\mathrm{CDW}}\approx250 K, with proliferation of topological defects and domain walls, and accompanied by a completely overdamped soft optical phonon. Furthermore, we reveal that anisotropic long-wavelength thermal fluctuations spontaneously stabilise an asymmetric 3Q3Q chiral CDW order with C2C2 symmetry. These findings provide a unified microscopic framework for understanding complex fluctuation-driven phase transitions in 2D quantum materials, demonstrating that the intricate CDW physics of TiSe2_{2} can be largely captured without invoking excitonic correlations.

Keywords

Cite

@article{arxiv.2604.20355,
  title  = {Fluctuation-driven multi-step charge density wave transition in monolayer TiSe$_2$},
  author = {Luka Benić and Dino Novko and Ivor Lončarić},
  journal= {arXiv preprint arXiv:2604.20355},
  year   = {2026}
}
R2 v1 2026-07-01T12:30:02.781Z